[{"volume":38,"doi":"10.1002/adma.202507385","article_processing_charge":"No","language":[{"iso":"eng"}],"OA_type":"hybrid","date_published":"2026-02-02T00:00:00Z","publication":"Advanced Materials","issue":"7","status":"public","abstract":[{"lang":"eng","text":"Physiological void spaces exist at every scale of the human body, from organs to molecules, facilitating transport, signal propagation, and localized biochemical activity. Constriction of these spaces (e.g., arterial occlusion, fibrosis) highlights their importance, making their mimicry essential in tissue engineering (TE). This review examines four key strategies for introducing porosity into hydrogels across multiple length scales: templating, microgels, phase separation, and 3D printing. The first three methods enable the engineering of physiological environments at the nano‐ to micro‐scale, mimicking tissue‐ and extracellular matrix (ECM)‐level spaces. Templating involves embedding and removal of gas, liquid, or solid phases, leaving behind pores. Microgel annealing generates inherent interstitial voids. Liquid–liquid phase separation (LLPS) creates biphasic networks reminiscent of native ECM. The fourth approach, extrusion‐ and light‐based 3D printing techniques, enables the fabrication of larger‐scale spaces, such as luminal structures (e.g., vasculature, airways, and ducts). Combining these methods enables the creation of hierarchical architectures from the nano‐ to centimeter scale. The review also highlights Filamented Light (FLight) technology, which creates internal microstructural voids relevant to anisotropic tissues. This review offers insights into current methods and their convergence for generating biomimetic void spaces to meet the physiological demands of cells, tissues, and organs."}],"oa_version":"Published Version","type":"journal_article","publisher":"Wiley","author":[{"last_name":"Puiggalí‐Jou","full_name":"Puiggalí‐Jou, Anna","first_name":"Anna"},{"last_name":"Hui","full_name":"Hui, Isabel B.","first_name":"Isabel B."},{"id":"492def71-6250-11f0-b278-d41dbd241b62","first_name":"Carla","last_name":"Fernández-Rico","full_name":"Fernández-Rico, Carla"},{"full_name":"Zenobi‐Wong, Marcy","last_name":"Zenobi‐Wong","first_name":"Marcy"}],"day":"02","date_updated":"2026-07-15T08:08:38Z","intvolume":"        38","year":"2026","external_id":{"pmid":["41312612"]},"article_type":"original","oa":1,"scopus_import":"1","publication_status":"published","ddc":["540"],"month":"02","quality_controlled":"1","title":"The space within: How architected voids promote tissue formation","extern":"1","date_created":"2026-06-30T06:36:20Z","main_file_link":[{"url":"https://doi.org/10.1002/adma.202507385","open_access":"1"}],"has_accepted_license":"1","pmid":1,"citation":{"mla":"Puiggalí‐Jou, Anna, et al. “The Space within: How Architected Voids Promote Tissue Formation.” <i>Advanced Materials</i>, vol. 38, no. 7, e07385, Wiley, 2026, doi:<a href=\"https://doi.org/10.1002/adma.202507385\">10.1002/adma.202507385</a>.","chicago":"Puiggalí‐Jou, Anna, Isabel B. Hui, Carla Fernández-Rico, and Marcy Zenobi‐Wong. “The Space within: How Architected Voids Promote Tissue Formation.” <i>Advanced Materials</i>. Wiley, 2026. <a href=\"https://doi.org/10.1002/adma.202507385\">https://doi.org/10.1002/adma.202507385</a>.","ieee":"A. Puiggalí‐Jou, I. B. Hui, C. Fernández-Rico, and M. Zenobi‐Wong, “The space within: How architected voids promote tissue formation,” <i>Advanced Materials</i>, vol. 38, no. 7. Wiley, 2026.","ama":"Puiggalí‐Jou A, Hui IB, Fernández-Rico C, Zenobi‐Wong M. The space within: How architected voids promote tissue formation. <i>Advanced Materials</i>. 2026;38(7). doi:<a href=\"https://doi.org/10.1002/adma.202507385\">10.1002/adma.202507385</a>","apa":"Puiggalí‐Jou, A., Hui, I. B., Fernández-Rico, C., &#38; Zenobi‐Wong, M. (2026). The space within: How architected voids promote tissue formation. <i>Advanced Materials</i>. Wiley. <a href=\"https://doi.org/10.1002/adma.202507385\">https://doi.org/10.1002/adma.202507385</a>","ista":"Puiggalí‐Jou A, Hui IB, Fernández-Rico C, Zenobi‐Wong M. 2026. The space within: How architected voids promote tissue formation. Advanced Materials. 38(7), e07385.","short":"A. Puiggalí‐Jou, I.B. Hui, C. Fernández-Rico, M. Zenobi‐Wong, Advanced Materials 38 (2026)."},"PlanS_conform":"1","tmp":{"legal_code_url":"https://creativecommons.org/licenses/by/4.0/legalcode","name":"Creative Commons Attribution 4.0 International Public License (CC-BY 4.0)","image":"/images/cc_by.png","short":"CC BY (4.0)"},"article_number":"e07385","OA_place":"publisher","publication_identifier":{"issn":["0935-9648"],"eissn":["1521-4095"]},"user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","_id":"22218"},{"publication_status":"epub_ahead","acknowledgement":"M.I. and S.H. acknowledge financial support from ISTA and the Werner Siemens Foundation. Q.S. acknowledges financial support from the European Union's Horizon Europe Research and Innovation Programme under the Marie Skłodowska-Curie Grant Agreement No. 101211154. This work was supported by the Generalitat de Catalunya (Grant No. 2021SGR01581), the National Natural Science Foundation of China (Grant Nos. 52125505 and 52475336), and the Joint Fund of Henan Province Science and Technology R&D Program (Grant No. 235200810097). Part of this research was carried out with support from the Scientific Service Units (SSU) of the Institute of Science and Technology Austria (ISTA), utilizing resources provided by the Electron Microscopy Facility (EMF) and the Nanofabrication Facility (NFF).","ddc":["530"],"oa":1,"article_type":"original","scopus_import":"1","month":"09","acknowledged_ssus":[{"_id":"NanoFab"},{"_id":"EM-Fac"}],"year":"2025","external_id":{"pmid":["41025826"],"isi":["001583809400001"]},"publication_identifier":{"issn":["0935-9648"],"eissn":["1521-4095"]},"OA_place":"publisher","article_number":"e10906","_id":"20496","user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","date_created":"2025-10-19T22:01:32Z","main_file_link":[{"url":"https://doi.org/10.1002/adma.202510906","open_access":"1"}],"quality_controlled":"1","department":[{"_id":"MaIb"}],"title":"Crystal growth engineering for dendrite-free Zinc metal plating","PlanS_conform":"1","tmp":{"legal_code_url":"https://creativecommons.org/licenses/by/4.0/legalcode","name":"Creative Commons Attribution 4.0 International Public License (CC-BY 4.0)","image":"/images/cc_by.png","short":"CC BY (4.0)"},"has_accepted_license":"1","pmid":1,"citation":{"apa":"Zeng, G., Horta, S., Sun, Q., Khan, M. D., Ibáñez, M., Han, Y., … Cabot, A. (2025). Crystal growth engineering for dendrite-free Zinc metal plating. <i>Advanced Materials</i>. Wiley. <a href=\"https://doi.org/10.1002/adma.202510906\">https://doi.org/10.1002/adma.202510906</a>","ama":"Zeng G, Horta S, Sun Q, et al. Crystal growth engineering for dendrite-free Zinc metal plating. <i>Advanced Materials</i>. 2025. doi:<a href=\"https://doi.org/10.1002/adma.202510906\">10.1002/adma.202510906</a>","ista":"Zeng G, Horta S, Sun Q, Khan MD, Ibáñez M, Han Y, Wang S, Li L, Ci L, Tian Y, Cabot A. 2025. Crystal growth engineering for dendrite-free Zinc metal plating. Advanced Materials., e10906.","short":"G. Zeng, S. Horta, Q. Sun, M.D. Khan, M. Ibáñez, Y. Han, S. Wang, L. Li, L. Ci, Y. Tian, A. Cabot, Advanced Materials (2025).","mla":"Zeng, Guifang, et al. “Crystal Growth Engineering for Dendrite-Free Zinc Metal Plating.” <i>Advanced Materials</i>, e10906, Wiley, 2025, doi:<a href=\"https://doi.org/10.1002/adma.202510906\">10.1002/adma.202510906</a>.","chicago":"Zeng, Guifang, Sharona Horta, Qing Sun, Malik Dilshad Khan, Maria Ibáñez, Yuhang Han, Shang Wang, et al. “Crystal Growth Engineering for Dendrite-Free Zinc Metal Plating.” <i>Advanced Materials</i>. Wiley, 2025. <a href=\"https://doi.org/10.1002/adma.202510906\">https://doi.org/10.1002/adma.202510906</a>.","ieee":"G. Zeng <i>et al.</i>, “Crystal growth engineering for dendrite-free Zinc metal plating,” <i>Advanced Materials</i>. Wiley, 2025."},"status":"public","abstract":[{"text":"The practical implementation of aqueous zinc-ion batteries (AZIBs) is limited by uncontrolled zinc (Zn) dendrite growth during anode plating, compromising both safety and cycle life. Typically, Zn plating proceeds via 2D growth along the six equivalent prismatic [1010] directions of the hexagonal close-packed (HCP) Zn lattice, forming hexagonal platelets that promote dendrite formation. Here, an effective electrolyte engineering strategy is presented using rare-earth ions to regulate Zn plating. Combined multiscale experimental analyses and computational modeling reveal that these ions preferentially adsorb onto the prismatic {1010} facets, suppressing lateral epitaxial growth of the basal (0002) planes. This redirects Zn plating toward an apparent screw dislocation-driven growth along the [0001] axis. The resulting growth pathway, together with randomly oriented Zn nucleation, yields dense, uniform, and dendrite-free Zn layers with markedly improved cycling stability and high depth-of-discharge operation, thereby challenging the prevailing assumption that dendrite suppression requires (0002)-oriented growth parallel to the substrate. This work provides new mechanistic insights into Zn plating dynamics and establishes a scalable strategy for stable, dendrite-free Zn anodes in next-generation AZIBs.","lang":"eng"}],"publication":"Advanced Materials","oa_version":"Published Version","article_processing_charge":"Yes (in subscription journal)","doi":"10.1002/adma.202510906","date_published":"2025-09-30T00:00:00Z","language":[{"iso":"eng"}],"OA_type":"hybrid","isi":1,"project":[{"name":"HighTE: The Werner Siemens Laboratory for the High Throughput Discovery of Semiconductors for Waste Heat Recovery","_id":"9B8F7476-BA93-11EA-9121-9846C619BF3A"}],"day":"30","date_updated":"2025-12-01T12:56:48Z","type":"journal_article","publisher":"Wiley","author":[{"last_name":"Zeng","full_name":"Zeng, Guifang","first_name":"Guifang"},{"last_name":"Horta","full_name":"Horta, Sharona","id":"03a7e858-01b1-11ec-8b71-99ae6c4a05bc","first_name":"Sharona"},{"first_name":"Qing","last_name":"Sun","full_name":"Sun, Qing"},{"full_name":"Khan, Malik Dilshad","last_name":"Khan","first_name":"Malik Dilshad"},{"id":"43C61214-F248-11E8-B48F-1D18A9856A87","first_name":"Maria","orcid":"0000-0001-5013-2843","full_name":"Ibáñez, Maria","last_name":"Ibáñez"},{"last_name":"Han","full_name":"Han, Yuhang","first_name":"Yuhang"},{"full_name":"Wang, Shang","last_name":"Wang","first_name":"Shang"},{"first_name":"Longqiu","full_name":"Li, Longqiu","last_name":"Li"},{"first_name":"Lijie","full_name":"Ci, Lijie","last_name":"Ci"},{"first_name":"Yanhong","full_name":"Tian, Yanhong","last_name":"Tian"},{"first_name":"Andreu","last_name":"Cabot","full_name":"Cabot, Andreu"}]},{"isi":1,"day":"22","date_updated":"2025-12-01T15:12:53Z","type":"journal_article","author":[{"first_name":"Marc","last_name":"Botifoll","full_name":"Botifoll, Marc"},{"first_name":"Ivan","full_name":"Pinto-Huguet, Ivan","last_name":"Pinto-Huguet"},{"last_name":"Rotunno","full_name":"Rotunno, Enzo","first_name":"Enzo"},{"last_name":"Galvani","full_name":"Galvani, Thomas","first_name":"Thomas"},{"full_name":"Coll, Catalina","last_name":"Coll","first_name":"Catalina"},{"full_name":"Kavkani, Payam Habibzadeh","last_name":"Kavkani","first_name":"Payam Habibzadeh"},{"full_name":"Spadaro, Maria Chiara","last_name":"Spadaro","first_name":"Maria Chiara"},{"full_name":"Niquet, Yann Michel","last_name":"Niquet","first_name":"Yann Michel"},{"first_name":"Martin Børstad","last_name":"Eriksen","full_name":"Eriksen, Martin Børstad"},{"first_name":"Sara","last_name":"Martí-Sánchez","full_name":"Martí-Sánchez, Sara"},{"full_name":"Katsaros, Georgios","last_name":"Katsaros","orcid":"0000-0001-8342-202X","id":"38DB5788-F248-11E8-B48F-1D18A9856A87","first_name":"Georgios"},{"first_name":"Giordano","last_name":"Scappucci","full_name":"Scappucci, Giordano"},{"first_name":"Peter","last_name":"Krogstrup","full_name":"Krogstrup, Peter"},{"full_name":"Isella, Giovanni","last_name":"Isella","first_name":"Giovanni"},{"last_name":"Cabot","full_name":"Cabot, Andreu","first_name":"Andreu"},{"full_name":"Merino, Gonzalo","last_name":"Merino","first_name":"Gonzalo"},{"first_name":"Pablo","full_name":"Ordejón, Pablo","last_name":"Ordejón"},{"first_name":"Stephan","last_name":"Roche","full_name":"Roche, Stephan"},{"first_name":"Vincenzo","full_name":"Grillo, Vincenzo","last_name":"Grillo"},{"full_name":"Arbiol, Jordi","last_name":"Arbiol","first_name":"Jordi"}],"publisher":"Wiley","abstract":[{"lang":"eng","text":"(Scanning) transmission electron microscopy ((S)TEM) has significantly advanced materials science but faces challenges in correlating precise atomic structure information with the functional properties of devices due to its time-intensive nature. To address this, an analytical workflow is introduced for the holistic characterization, modelling, and simulation of device heterostructures. This workflow automates the experimental (S)TEM data analysis, providing an in-depth characterization of crystallographic information, 3D orientation, elemental composition, and strain distribution. It reduces a process that typically takes days for a trained human into an automatic routine solved in minutes. Utilizing a physics-guided artificial intelligence model, it generates representative descriptions of materials and samples. The workflow culminates in creating digital twins of systems limited with at least one axis of translational invariance –3D finite element and atomic models of millions of atoms–enabling simulations that provide crucial insights into device behavior in practical applications. Demonstrated with SiGe planar heterostructures for scalable spin qubits, the workflow links digital twins to theoretical properties, revealing how atomic structure impacts materials and functional properties such as spatially-resolved phononic or electronic characteristics, or (inverse) spin orbit lengths. The versatility of the workflow is demonstrated through its application to a wide array of materials systems, device configurations, and sample morphologies."}],"status":"public","publication":"Advanced Materials","oa_version":"Published Version","article_processing_charge":"Yes (in subscription journal)","doi":"10.1002/adma.202506785","language":[{"iso":"eng"}],"date_published":"2025-10-22T00:00:00Z","OA_type":"hybrid","publication_identifier":{"issn":["0935-9648"],"eissn":["1521-4095"]},"OA_place":"publisher","article_number":"e06785","_id":"20594","user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","date_created":"2025-11-02T23:01:35Z","main_file_link":[{"url":"https://doi.org/10.1002/adma.202506785","open_access":"1"}],"title":"Artificial intelligence-assisted workflow for transmission electron microscopy: From data analysis automation to materials knowledge unveiling","department":[{"_id":"GeKa"}],"quality_controlled":"1","tmp":{"image":"/images/cc_by_nc_nd.png","short":"CC BY-NC-ND (4.0)","legal_code_url":"https://creativecommons.org/licenses/by-nc-nd/4.0/legalcode","name":"Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0)"},"citation":{"ama":"Botifoll M, Pinto-Huguet I, Rotunno E, et al. Artificial intelligence-assisted workflow for transmission electron microscopy: From data analysis automation to materials knowledge unveiling. <i>Advanced Materials</i>. 2025. doi:<a href=\"https://doi.org/10.1002/adma.202506785\">10.1002/adma.202506785</a>","apa":"Botifoll, M., Pinto-Huguet, I., Rotunno, E., Galvani, T., Coll, C., Kavkani, P. H., … Arbiol, J. (2025). Artificial intelligence-assisted workflow for transmission electron microscopy: From data analysis automation to materials knowledge unveiling. <i>Advanced Materials</i>. Wiley. <a href=\"https://doi.org/10.1002/adma.202506785\">https://doi.org/10.1002/adma.202506785</a>","short":"M. Botifoll, I. Pinto-Huguet, E. Rotunno, T. Galvani, C. Coll, P.H. Kavkani, M.C. Spadaro, Y.M. Niquet, M.B. Eriksen, S. Martí-Sánchez, G. Katsaros, G. Scappucci, P. Krogstrup, G. Isella, A. Cabot, G. Merino, P. Ordejón, S. Roche, V. Grillo, J. Arbiol, Advanced Materials (2025).","ista":"Botifoll M, Pinto-Huguet I, Rotunno E, Galvani T, Coll C, Kavkani PH, Spadaro MC, Niquet YM, Eriksen MB, Martí-Sánchez S, Katsaros G, Scappucci G, Krogstrup P, Isella G, Cabot A, Merino G, Ordejón P, Roche S, Grillo V, Arbiol J. 2025. Artificial intelligence-assisted workflow for transmission electron microscopy: From data analysis automation to materials knowledge unveiling. Advanced Materials., e06785.","mla":"Botifoll, Marc, et al. “Artificial Intelligence-Assisted Workflow for Transmission Electron Microscopy: From Data Analysis Automation to Materials Knowledge Unveiling.” <i>Advanced Materials</i>, e06785, Wiley, 2025, doi:<a href=\"https://doi.org/10.1002/adma.202506785\">10.1002/adma.202506785</a>.","ieee":"M. Botifoll <i>et al.</i>, “Artificial intelligence-assisted workflow for transmission electron microscopy: From data analysis automation to materials knowledge unveiling,” <i>Advanced Materials</i>. Wiley, 2025.","chicago":"Botifoll, Marc, Ivan Pinto-Huguet, Enzo Rotunno, Thomas Galvani, Catalina Coll, Payam Habibzadeh Kavkani, Maria Chiara Spadaro, et al. “Artificial Intelligence-Assisted Workflow for Transmission Electron Microscopy: From Data Analysis Automation to Materials Knowledge Unveiling.” <i>Advanced Materials</i>. Wiley, 2025. <a href=\"https://doi.org/10.1002/adma.202506785\">https://doi.org/10.1002/adma.202506785</a>."},"has_accepted_license":"1","publication_status":"epub_ahead","acknowledgement":"ICN2 acknowledged funding from Generalitat de Catalunya 2021SGR00457, 2021SGR00997 and 2021SGR01519. The authors thank support from the project AMaDE (PID2023-149158OB-C43), funded by MCIN/ AEI/10.13039/501100011033/. This study was part of the Advanced Materials programme and was supported by MCIN with funding from European Union NextGenerationEU (PRTR-C17.I1) and by Generalitat de Catalunya (In-CAEM Project). The authors acknowledged support from CSIC Interdisciplinary Thematic Platform (PTI+) on Quantum Technologies (PTI-QTEP+). This research work had been funded by the European Commission – NextGenerationEU (Regulation EU 2020/2094), through CSIC's Quantum Technologies Platform (QTEP). ICN2 was supported by the Severo Ochoa program from Spanish MCIN / AEI (Grant No.: CEX2021-001214-S) and was funded by the CERCA Programme / Generalitat de Catalunya. Part of the present work had been performed in the framework of Universitat Autònoma de Barcelona Materials Science PhD program. I.P.H. acknowledged funding from AGAUR-FI scholarship (2023FI-00268) Joan Oró of the Secretariat of Universities of the Generalitat of Catalonia and the European SocialPlus Fund. M.B. acknowledged support from SUR Generalitat de Catalunya and the EU Social Fund; project ref. 2020 FI 00103. This study was supported by EU HORIZON INFRA TECH 2022 project IMPRESS (Ref.: 101094299). Authors acknowledged the use of instrumentation as well as the technical advice provided by the Joint Electron Microscopy Center at ALBA (JEMCA). ICN2 acknowledged funding from Grant IU16-014206 (METCAM-FIB) funded by the European Union through the European Regional Development Fund (ERDF), with the support of the Ministry of Research and Universities, Generalitat de Catalunya. ICN2 was a founding member of e-DREAM.[135] S.R. was also supported by MICIN with European funds NextGenerationEU (PRTRC17.I1) funded by Generalitat de Catalunya. P.O. acknowledged support from the EU MaX CoE (Grant No. 101093374), Grants No. PCI2022-134972-2 and No. PID2022-139776NB-C62 funded by the Spanish MCIN/AEI/10.13039/501100011033 and by the ERDF, A way of making Europe.The authors thank the Catalan Quantum Academy for support. The authors acknowledged Dámaso Torres for his support in designing the graphical material.","ddc":["530"],"license":"https://creativecommons.org/licenses/by-nc-nd/4.0/","article_type":"original","oa":1,"scopus_import":"1","month":"10","external_id":{"arxiv":["2411.01024"],"isi":["001597428400001"]},"arxiv":1,"year":"2025"},{"citation":{"chicago":"Zeng, Guifang, Qing Sun, Sharona Horta, Shang Wang, Xuan Lu, Chaoyue Zhang, Jing Li, et al. “A Layered Bi2Te3@PPy Cathode for Aqueous Zinc Ion Batteries: Mechanism and Application in Printed Flexible Batteries.” <i>Advanced Materials</i>. Wiley, 2024. <a href=\"https://doi.org/10.1002/adma.202305128\">https://doi.org/10.1002/adma.202305128</a>.","ieee":"G. Zeng <i>et al.</i>, “A layered Bi2Te3@PPy cathode for aqueous zinc ion batteries: Mechanism and application in printed flexible batteries,” <i>Advanced Materials</i>, vol. 36, no. 1. Wiley, 2024.","mla":"Zeng, Guifang, et al. “A Layered Bi2Te3@PPy Cathode for Aqueous Zinc Ion Batteries: Mechanism and Application in Printed Flexible Batteries.” <i>Advanced Materials</i>, vol. 36, no. 1, 2305128, Wiley, 2024, doi:<a href=\"https://doi.org/10.1002/adma.202305128\">10.1002/adma.202305128</a>.","ista":"Zeng G, Sun Q, Horta S, Wang S, Lu X, Zhang C, Li J, Li J, Ci L, Tian Y, Ibáñez M, Cabot A. 2024. A layered Bi2Te3@PPy cathode for aqueous zinc ion batteries: Mechanism and application in printed flexible batteries. Advanced Materials. 36(1), 2305128.","short":"G. Zeng, Q. Sun, S. Horta, S. Wang, X. Lu, C. Zhang, J. Li, J. Li, L. Ci, Y. Tian, M. Ibáñez, A. Cabot, Advanced Materials 36 (2024).","apa":"Zeng, G., Sun, Q., Horta, S., Wang, S., Lu, X., Zhang, C., … Cabot, A. (2024). A layered Bi2Te3@PPy cathode for aqueous zinc ion batteries: Mechanism and application in printed flexible batteries. <i>Advanced Materials</i>. Wiley. <a href=\"https://doi.org/10.1002/adma.202305128\">https://doi.org/10.1002/adma.202305128</a>","ama":"Zeng G, Sun Q, Horta S, et al. A layered Bi2Te3@PPy cathode for aqueous zinc ion batteries: Mechanism and application in printed flexible batteries. <i>Advanced Materials</i>. 2024;36(1). doi:<a href=\"https://doi.org/10.1002/adma.202305128\">10.1002/adma.202305128</a>"},"pmid":1,"title":"A layered Bi2Te3@PPy cathode for aqueous zinc ion batteries: Mechanism and application in printed flexible batteries","department":[{"_id":"MaIb"}],"quality_controlled":"1","date_created":"2023-10-17T10:53:56Z","user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","_id":"14435","article_number":"2305128","publication_identifier":{"eissn":["1521-4095"],"issn":["0935-9648"]},"external_id":{"isi":["001085681000001"],"pmid":["37555532"]},"year":"2024","keyword":["Mechanical Engineering","Mechanics of Materials","General Materials Science"],"intvolume":"        36","acknowledged_ssus":[{"_id":"EM-Fac"}],"month":"01","article_type":"original","scopus_import":"1","publication_status":"published","acknowledgement":"G.Z. and Q.S. contributed equally to this work. This work was supported by the National Natural Science Foundation of China (52105329, 52175300) and the Heilongjiang Provincial Natural Science Foundation of China (LH2022E059). G.Z., X.L., and C.Z. thank the China Scholarship Council (CSC) for the scholarship support. This research was supported by the Scientific Service Units of ISTA through resources provided by the Electron Microscopy Facility. S.H. and M.I. acknowledge funding by ISTA and Werner Siemens.","author":[{"first_name":"Guifang","last_name":"Zeng","full_name":"Zeng, Guifang"},{"last_name":"Sun","full_name":"Sun, Qing","first_name":"Qing"},{"first_name":"Sharona","id":"03a7e858-01b1-11ec-8b71-99ae6c4a05bc","full_name":"Horta, Sharona","last_name":"Horta"},{"first_name":"Shang","full_name":"Wang, Shang","last_name":"Wang"},{"last_name":"Lu","full_name":"Lu, Xuan","first_name":"Xuan"},{"first_name":"Chaoyue","full_name":"Zhang, Chaoyue","last_name":"Zhang"},{"full_name":"Li, Jing","last_name":"Li","first_name":"Jing"},{"full_name":"Li, Junshan","last_name":"Li","first_name":"Junshan"},{"full_name":"Ci, Lijie","last_name":"Ci","first_name":"Lijie"},{"full_name":"Tian, Yanhong","last_name":"Tian","first_name":"Yanhong"},{"last_name":"Ibáñez","full_name":"Ibáñez, Maria","first_name":"Maria","id":"43C61214-F248-11E8-B48F-1D18A9856A87","orcid":"0000-0001-5013-2843"},{"first_name":"Andreu","last_name":"Cabot","full_name":"Cabot, Andreu"}],"publisher":"Wiley","type":"journal_article","date_updated":"2025-04-15T06:36:40Z","day":"04","isi":1,"project":[{"name":"HighTE: The Werner Siemens Laboratory for the High Throughput Discovery of Semiconductors for Waste Heat Recovery","_id":"9B8F7476-BA93-11EA-9121-9846C619BF3A"}],"date_published":"2024-01-04T00:00:00Z","language":[{"iso":"eng"}],"volume":36,"doi":"10.1002/adma.202305128","article_processing_charge":"No","oa_version":"None","issue":"1","publication":"Advanced Materials","abstract":[{"lang":"eng","text":"Low‐cost, safe, and environmental‐friendly rechargeable aqueous zinc‐ion batteries (ZIBs) are promising as next‐generation energy storage devices for wearable electronics among other applications. However, sluggish ionic transport kinetics and the unstable electrode structure during ionic insertion/extraction hampers their deployment. Herein,  we propose a new cathode material based on a layered metal chalcogenide (LMC), bismuth telluride (Bi<jats:sub>2</jats:sub>Te<jats:sub>3</jats:sub>), coated with polypyrrole (PPy). Taking advantage of the PPy coating, the Bi<jats:sub>2</jats:sub>Te<jats:sub>3</jats:sub>@PPy composite presents strong ionic absorption affinity, high oxidation resistance, and high structural stability. The ZIBs based on Bi<jats:sub>2</jats:sub>Te<jats:sub>3</jats:sub>@PPy cathodes exhibit high capacities and ultra‐long lifespans of over 5000 cycles. They also present outstanding stability even under bending. In addition,  we analyze here the reaction mechanism using in situ X‐ray diffraction, X‐ray photoelectron spectroscopy, and computational tools and demonstrate that, in the aqueous system, Zn<jats:sup>2+</jats:sup> is not inserted into the cathode as previously assumed. In contrast, proton charge storage dominates the process. Overall, this work not only shows the great potential of LMCs as ZIBs cathode materials and the advantages of PPy coating, but also clarifies the charge/discharge mechanism in rechargeable ZIBs based on LMCs."}],"status":"public"},{"intvolume":"        36","year":"2024","ddc":["530"],"publication_status":"published","oa":1,"month":"01","date_created":"2025-07-21T08:53:06Z","main_file_link":[{"open_access":"1","url":"https://doi.org/10.1002/adma.202470004"}],"department":[{"_id":"MaIb"}],"quality_controlled":"1","title":"A layered Bi2Te3@PPy cathode for aqueous Zinc‐Ion batteries: Mechanism and application in printed flexible batteries","citation":{"ista":"Zeng G, Sun Q, Horta S, Wang S, Lu X, Zhang CY, Li J, Li J, Ci L, Tian Y, Ibáñez M, Cabot A. 2024. A layered Bi2Te3@PPy cathode for aqueous Zinc‐Ion batteries: Mechanism and application in printed flexible batteries, Wiley,p.","short":"G. Zeng, Q. Sun, S. Horta, S. Wang, X. Lu, C.Y. Zhang, J. Li, J. Li, L. Ci, Y. Tian, M. Ibáñez, A. Cabot, A Layered Bi2Te3@PPy Cathode for Aqueous Zinc‐Ion Batteries: Mechanism and Application in Printed Flexible Batteries, Wiley, 2024.","ama":"Zeng G, Sun Q, Horta S, et al. <i>A Layered Bi2Te3@PPy Cathode for Aqueous Zinc‐Ion Batteries: Mechanism and Application in Printed Flexible Batteries</i>. Vol 36. Wiley; 2024. doi:<a href=\"https://doi.org/10.1002/adma.202470004\">10.1002/adma.202470004</a>","apa":"Zeng, G., Sun, Q., Horta, S., Wang, S., Lu, X., Zhang, C. Y., … Cabot, A. (2024). <i>A layered Bi2Te3@PPy cathode for aqueous Zinc‐Ion batteries: Mechanism and application in printed flexible batteries</i>. <i>Advanced Materials</i> (Vol. 36). Wiley. <a href=\"https://doi.org/10.1002/adma.202470004\">https://doi.org/10.1002/adma.202470004</a>","chicago":"Zeng, Guifang, Qing Sun, Sharona Horta, Shang Wang, Xuan Lu, Chao Yue Zhang, Jing Li, et al. <i>A Layered Bi2Te3@PPy Cathode for Aqueous Zinc‐Ion Batteries: Mechanism and Application in Printed Flexible Batteries</i>. <i>Advanced Materials</i>. Vol. 36. Wiley, 2024. <a href=\"https://doi.org/10.1002/adma.202470004\">https://doi.org/10.1002/adma.202470004</a>.","ieee":"G. Zeng <i>et al.</i>, <i>A layered Bi2Te3@PPy cathode for aqueous Zinc‐Ion batteries: Mechanism and application in printed flexible batteries</i>, vol. 36, no. 1. Wiley, 2024.","mla":"Zeng, Guifang, et al. “A Layered Bi2Te3@PPy Cathode for Aqueous Zinc‐Ion Batteries: Mechanism and Application in Printed Flexible Batteries.” <i>Advanced Materials</i>, vol. 36, no. 1, 2470004, Wiley, 2024, doi:<a href=\"https://doi.org/10.1002/adma.202470004\">10.1002/adma.202470004</a>."},"OA_place":"publisher","publication_identifier":{"eissn":["1521-4095"],"issn":["0935-9648"]},"article_number":"2470004","_id":"20057","user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","doi":"10.1002/adma.202470004","article_processing_charge":"No","volume":36,"OA_type":"free access","language":[{"iso":"eng"}],"date_published":"2024-01-04T00:00:00Z","status":"public","abstract":[{"text":"In article number 2305128, Qing Sun, Shang Wang, Yanhong Tian, Andreu Cabot, and co-workers report an investigation of the energy-storage mechanism of a layered Bi2Te3-based cathode for aqueous zinc-ion batteries (ZIBs). They demonstrate that the zinc ion is not inserted into the cathode as previously assumed; in contrast, proton charge-storage dominates the process. They also demonstrate the great application prospects of aqueous ZIBs in flexible electronics via jet printing technology.","lang":"eng"}],"publication":"Advanced Materials","issue":"1","oa_version":"Published Version","type":"other_academic_publication","publisher":"Wiley","author":[{"first_name":"Guifang","last_name":"Zeng","full_name":"Zeng, Guifang"},{"first_name":"Qing","full_name":"Sun, Qing","last_name":"Sun"},{"id":"03a7e858-01b1-11ec-8b71-99ae6c4a05bc","first_name":"Sharona","last_name":"Horta","full_name":"Horta, Sharona"},{"first_name":"Shang","last_name":"Wang","full_name":"Wang, Shang"},{"full_name":"Lu, Xuan","last_name":"Lu","first_name":"Xuan"},{"last_name":"Zhang","full_name":"Zhang, Chao Yue","first_name":"Chao Yue"},{"full_name":"Li, Jing","last_name":"Li","first_name":"Jing"},{"first_name":"Junshan","last_name":"Li","full_name":"Li, Junshan"},{"first_name":"Lijie","last_name":"Ci","full_name":"Ci, Lijie"},{"full_name":"Tian, Yanhong","last_name":"Tian","first_name":"Yanhong"},{"full_name":"Ibáñez, Maria","last_name":"Ibáñez","first_name":"Maria","id":"43C61214-F248-11E8-B48F-1D18A9856A87","orcid":"0000-0001-5013-2843"},{"first_name":"Andreu","full_name":"Cabot, Andreu","last_name":"Cabot"}],"day":"04","date_updated":"2026-06-18T18:19:28Z"},{"type":"journal_article","author":[{"first_name":"Barbara","last_name":"Schamberger","full_name":"Schamberger, Barbara"},{"first_name":"Ricardo","last_name":"Ziege","full_name":"Ziege, Ricardo"},{"first_name":"Karine","full_name":"Anselme, Karine","last_name":"Anselme"},{"first_name":"Martine","last_name":"Ben Amar","full_name":"Ben Amar, Martine"},{"first_name":"Michał","full_name":"Bykowski, Michał","last_name":"Bykowski"},{"first_name":"André P.G.","full_name":"Castro, André P.G.","last_name":"Castro"},{"first_name":"Amaia","last_name":"Cipitria","full_name":"Cipitria, Amaia"},{"last_name":"Coles","full_name":"Coles, Rhoslyn A.","first_name":"Rhoslyn A."},{"first_name":"Rumiana","last_name":"Dimova","full_name":"Dimova, Rumiana"},{"first_name":"Michaela","last_name":"Eder","full_name":"Eder, Michaela"},{"first_name":"Sebastian","last_name":"Ehrig","full_name":"Ehrig, Sebastian"},{"full_name":"Escudero, Luis M.","last_name":"Escudero","first_name":"Luis M."},{"first_name":"Myfanwy E.","last_name":"Evans","full_name":"Evans, Myfanwy E."},{"full_name":"Fernandes, Paulo R.","last_name":"Fernandes","first_name":"Paulo R."},{"first_name":"Peter","full_name":"Fratzl, Peter","last_name":"Fratzl"},{"last_name":"Geris","full_name":"Geris, Liesbet","first_name":"Liesbet"},{"full_name":"Gierlinger, Notburga","last_name":"Gierlinger","first_name":"Notburga"},{"id":"3A9DB764-F248-11E8-B48F-1D18A9856A87","first_name":"Edouard B","orcid":"0000-0001-6005-1561","full_name":"Hannezo, Edouard B","last_name":"Hannezo"},{"first_name":"Aleš","full_name":"Iglič, Aleš","last_name":"Iglič"},{"first_name":"Jacob J.K.","last_name":"Kirkensgaard","full_name":"Kirkensgaard, Jacob J.K."},{"full_name":"Kollmannsberger, Philip","last_name":"Kollmannsberger","first_name":"Philip"},{"last_name":"Kowalewska","full_name":"Kowalewska, Łucja","first_name":"Łucja"},{"first_name":"Nicholas A.","last_name":"Kurniawan","full_name":"Kurniawan, Nicholas A."},{"first_name":"Ioannis","last_name":"Papantoniou","full_name":"Papantoniou, Ioannis"},{"last_name":"Pieuchot","full_name":"Pieuchot, Laurent","first_name":"Laurent"},{"first_name":"Tiago H.V.","last_name":"Pires","full_name":"Pires, Tiago H.V."},{"first_name":"Lars D.","full_name":"Renner, Lars D.","last_name":"Renner"},{"full_name":"Sageman-Furnas, Andrew O.","last_name":"Sageman-Furnas","first_name":"Andrew O."},{"first_name":"Gerd E.","full_name":"Schröder-Turk, Gerd E.","last_name":"Schröder-Turk"},{"last_name":"Sengupta","full_name":"Sengupta, Anupam","first_name":"Anupam"},{"last_name":"Sharma","full_name":"Sharma, Vikas R.","first_name":"Vikas R."},{"first_name":"Antonio","full_name":"Tagua, Antonio","last_name":"Tagua"},{"last_name":"Tomba","full_name":"Tomba, Caterina","first_name":"Caterina"},{"first_name":"Xavier","last_name":"Trepat","full_name":"Trepat, Xavier"},{"last_name":"Waters","full_name":"Waters, Sarah L.","first_name":"Sarah L."},{"first_name":"Edwina F.","last_name":"Yeo","full_name":"Yeo, Edwina F."},{"full_name":"Roschger, Andreas","last_name":"Roschger","first_name":"Andreas"},{"full_name":"Bidan, Cécile M.","last_name":"Bidan","first_name":"Cécile M."},{"first_name":"John W.C.","full_name":"Dunlop, John W.C.","last_name":"Dunlop"}],"publisher":"Wiley","isi":1,"day":"29","date_updated":"2023-09-26T10:56:46Z","article_processing_charge":"No","doi":"10.1002/adma.202206110","volume":35,"date_published":"2023-03-29T00:00:00Z","language":[{"iso":"eng"}],"file_date_updated":"2023-09-26T10:51:56Z","abstract":[{"lang":"eng","text":"Surface curvature both emerges from, and influences the behavior of, living objects at length scales ranging from cell membranes to single cells to tissues and organs. The relevance of surface curvature in biology is supported by numerous experimental and theoretical investigations in recent years. In this review, first, a brief introduction to the key ideas of surface curvature in the context of biological systems is given and the challenges that arise when measuring surface curvature are discussed. Giving an overview of the emergence of curvature in biological systems, its significance at different length scales becomes apparent. On the other hand, summarizing current findings also shows that both single cells and entire cell sheets, tissues or organisms respond to curvature by modulating their shape and their migration behavior. Finally, the interplay between the distribution of morphogens or micro-organisms and the emergence of curvature across length scales is addressed with examples demonstrating these key mechanistic principles of morphogenesis. Overall, this review highlights that curved interfaces are not merely a passive by-product of the chemical, biological, and mechanical processes but that curvature acts also as a signal that co-determines these processes."}],"status":"public","issue":"13","publication":"Advanced Materials","file":[{"content_type":"application/pdf","file_id":"14373","date_updated":"2023-09-26T10:51:56Z","file_name":"2023_AdvancedMaterials_Schamberger.pdf","access_level":"open_access","creator":"dernst","file_size":2898063,"relation":"main_file","date_created":"2023-09-26T10:51:56Z","checksum":"5c04d68130e97a0ecd1ca27fbc15a246","success":1}],"oa_version":"Published Version","date_created":"2023-03-05T23:01:06Z","title":"Curvature in biological systems: Its quantification, emergence, and implications across the scales","department":[{"_id":"EdHa"}],"quality_controlled":"1","tmp":{"legal_code_url":"https://creativecommons.org/licenses/by/4.0/legalcode","name":"Creative Commons Attribution 4.0 International Public License (CC-BY 4.0)","image":"/images/cc_by.png","short":"CC BY (4.0)"},"pmid":1,"citation":{"mla":"Schamberger, Barbara, et al. “Curvature in Biological Systems: Its Quantification, Emergence, and Implications across the Scales.” <i>Advanced Materials</i>, vol. 35, no. 13, 2206110, Wiley, 2023, doi:<a href=\"https://doi.org/10.1002/adma.202206110\">10.1002/adma.202206110</a>.","chicago":"Schamberger, Barbara, Ricardo Ziege, Karine Anselme, Martine Ben Amar, Michał Bykowski, André P.G. Castro, Amaia Cipitria, et al. “Curvature in Biological Systems: Its Quantification, Emergence, and Implications across the Scales.” <i>Advanced Materials</i>. Wiley, 2023. <a href=\"https://doi.org/10.1002/adma.202206110\">https://doi.org/10.1002/adma.202206110</a>.","ieee":"B. Schamberger <i>et al.</i>, “Curvature in biological systems: Its quantification, emergence, and implications across the scales,” <i>Advanced Materials</i>, vol. 35, no. 13. Wiley, 2023.","ama":"Schamberger B, Ziege R, Anselme K, et al. Curvature in biological systems: Its quantification, emergence, and implications across the scales. <i>Advanced Materials</i>. 2023;35(13). doi:<a href=\"https://doi.org/10.1002/adma.202206110\">10.1002/adma.202206110</a>","apa":"Schamberger, B., Ziege, R., Anselme, K., Ben Amar, M., Bykowski, M., Castro, A. P. G., … Dunlop, J. W. C. (2023). Curvature in biological systems: Its quantification, emergence, and implications across the scales. <i>Advanced Materials</i>. Wiley. <a href=\"https://doi.org/10.1002/adma.202206110\">https://doi.org/10.1002/adma.202206110</a>","ista":"Schamberger B, Ziege R, Anselme K, Ben Amar M, Bykowski M, Castro APG, Cipitria A, Coles RA, Dimova R, Eder M, Ehrig S, Escudero LM, Evans ME, Fernandes PR, Fratzl P, Geris L, Gierlinger N, Hannezo EB, Iglič A, Kirkensgaard JJK, Kollmannsberger P, Kowalewska Ł, Kurniawan NA, Papantoniou I, Pieuchot L, Pires THV, Renner LD, Sageman-Furnas AO, Schröder-Turk GE, Sengupta A, Sharma VR, Tagua A, Tomba C, Trepat X, Waters SL, Yeo EF, Roschger A, Bidan CM, Dunlop JWC. 2023. Curvature in biological systems: Its quantification, emergence, and implications across the scales. Advanced Materials. 35(13), 2206110.","short":"B. Schamberger, R. Ziege, K. Anselme, M. Ben Amar, M. Bykowski, A.P.G. Castro, A. Cipitria, R.A. Coles, R. Dimova, M. Eder, S. Ehrig, L.M. Escudero, M.E. Evans, P.R. Fernandes, P. Fratzl, L. Geris, N. Gierlinger, E.B. Hannezo, A. Iglič, J.J.K. Kirkensgaard, P. Kollmannsberger, Ł. Kowalewska, N.A. Kurniawan, I. Papantoniou, L. Pieuchot, T.H.V. Pires, L.D. Renner, A.O. Sageman-Furnas, G.E. Schröder-Turk, A. Sengupta, V.R. Sharma, A. Tagua, C. Tomba, X. Trepat, S.L. Waters, E.F. Yeo, A. Roschger, C.M. Bidan, J.W.C. Dunlop, Advanced Materials 35 (2023)."},"has_accepted_license":"1","publication_identifier":{"eissn":["1521-4095"],"issn":["0935-9648"]},"article_number":"2206110","_id":"12710","user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","intvolume":"        35","external_id":{"pmid":["36461812"],"isi":["000941068900001"]},"year":"2023","ddc":["570"],"acknowledgement":"B.S. and A.R. contributed equally to this work. A.P.G.C. and P.R.F. acknowledge the funding from Fundação para a Ciência e Tecnologia (Portugal), through IDMEC, under LAETA project UIDB/50022/2020. T.H.V.P. acknowledges the funding from Fundação para a Ciência e Tecnologia (Portugal), through Ph.D. Grant 2020.04417.BD. A.S. acknowledges that this work was partially supported by the ATTRACT Investigator Grant (no. A17/MS/11572821/MBRACE, to A.S.) from the Luxembourg National Research Fund. The author thanks Gerardo Ceada for his help in the graphical representations. N.A.K. acknowledges support from the European Research Council (grant 851960) and the Gravitation Program “Materials Driven Regeneration,” funded by the Netherlands Organization for Scientific Research (024.003.013). M.B.A. acknowledges support from the French National Research Agency (grant ANR-201-8-CE1-3-0008 for the project “Epimorph”). G.E.S.T. acknowledges funding by the Australian Research Council through project DP200102593. A.C. acknowledges the funding from the Deutsche Forschungsgemeinschaft (DFG) Emmy Noether Grant CI 203/-2 1, the Spanish Ministry of Science and Innovation (PID2021-123013O-BI00) and the IKERBASQUE Basque Foundation for Science.","publication_status":"published","article_type":"review","oa":1,"scopus_import":"1","month":"03"},{"_id":"14434","user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","publication_identifier":{"issn":["0935-9648"],"eissn":["1521-4095"]},"article_number":"2303719","citation":{"chicago":"He, Ren, Linlin Yang, Yu Zhang, Daochuan Jiang, Seungho Lee, Sharona Horta, Zhifu Liang, et al. “A 3d‐4d‐5d High Entropy Alloy as a Bifunctional Oxygen Catalyst for Robust Aqueous Zinc–Air Batteries.” <i>Advanced Materials</i>. Wiley, 2023. <a href=\"https://doi.org/10.1002/adma.202303719\">https://doi.org/10.1002/adma.202303719</a>.","ieee":"R. He <i>et al.</i>, “A 3d‐4d‐5d high entropy alloy as a bifunctional oxygen catalyst for robust aqueous zinc–air batteries,” <i>Advanced Materials</i>, vol. 35, no. 46. Wiley, 2023.","mla":"He, Ren, et al. “A 3d‐4d‐5d High Entropy Alloy as a Bifunctional Oxygen Catalyst for Robust Aqueous Zinc–Air Batteries.” <i>Advanced Materials</i>, vol. 35, no. 46, 2303719, Wiley, 2023, doi:<a href=\"https://doi.org/10.1002/adma.202303719\">10.1002/adma.202303719</a>.","ista":"He R, Yang L, Zhang Y, Jiang D, Lee S, Horta S, Liang Z, Lu X, Ostovari Moghaddam A, Li J, Ibáñez M, Xu Y, Zhou Y, Cabot A. 2023. A 3d‐4d‐5d high entropy alloy as a bifunctional oxygen catalyst for robust aqueous zinc–air batteries. Advanced Materials. 35(46), 2303719.","short":"R. He, L. Yang, Y. Zhang, D. Jiang, S. Lee, S. Horta, Z. Liang, X. Lu, A. Ostovari Moghaddam, J. Li, M. Ibáñez, Y. Xu, Y. Zhou, A. Cabot, Advanced Materials 35 (2023).","apa":"He, R., Yang, L., Zhang, Y., Jiang, D., Lee, S., Horta, S., … Cabot, A. (2023). A 3d‐4d‐5d high entropy alloy as a bifunctional oxygen catalyst for robust aqueous zinc–air batteries. <i>Advanced Materials</i>. Wiley. <a href=\"https://doi.org/10.1002/adma.202303719\">https://doi.org/10.1002/adma.202303719</a>","ama":"He R, Yang L, Zhang Y, et al. A 3d‐4d‐5d high entropy alloy as a bifunctional oxygen catalyst for robust aqueous zinc–air batteries. <i>Advanced Materials</i>. 2023;35(46). doi:<a href=\"https://doi.org/10.1002/adma.202303719\">10.1002/adma.202303719</a>"},"pmid":1,"date_created":"2023-10-17T10:52:23Z","title":"A 3d‐4d‐5d high entropy alloy as a bifunctional oxygen catalyst for robust aqueous zinc–air batteries","quality_controlled":"1","department":[{"_id":"MaIb"}],"month":"11","acknowledged_ssus":[{"_id":"EM-Fac"}],"publication_status":"published","acknowledgement":"The authors acknowledge funding from Generalitat de Catalunya 2021 SGR 01581; the project COMBENERGY, PID2019-105490RB-C32, from the Spanish Ministerio de Ciencia e Innovación; the National Natural Science Foundation of China (22102002); the Anhui Provincial Natural Science Foundation (2108085QE192); Zhejiang Province key research and development project (2023C01191); the Foundation of State Key Laboratory of High-efficiency Utilization of Coal and Green Chemical Engineering (GrantNo.2022-K31); and The Key Research and Development Program of Hebei Province (20314305D). IREC is funded by the CERCA Programme from the Generalitat de Catalunya. L.L.Y. thanks the China Scholarship Council (CSC) for the scholarship support (202008130132). This research was supported by the Scientific Service Units (SSU) of ISTA (Institute of Science and Technology Austria) through resources provided by the Electron Microscopy Facility (EMF). S.L., S.H., and M.I. acknowledge funding by ISTA and the Werner Siemens.","article_type":"original","scopus_import":"1","external_id":{"isi":["001083876900001"],"pmid":["37487245"]},"year":"2023","intvolume":"        35","keyword":["Mechanical Engineering","Mechanics of Materials","General Materials Science"],"date_updated":"2025-04-15T06:36:40Z","project":[{"_id":"9B8F7476-BA93-11EA-9121-9846C619BF3A","name":"HighTE: The Werner Siemens Laboratory for the High Throughput Discovery of Semiconductors for Waste Heat Recovery"}],"isi":1,"day":"16","publisher":"Wiley","author":[{"full_name":"He, Ren","last_name":"He","first_name":"Ren"},{"first_name":"Linlin","last_name":"Yang","full_name":"Yang, Linlin"},{"full_name":"Zhang, Yu","last_name":"Zhang","first_name":"Yu"},{"first_name":"Daochuan","full_name":"Jiang, Daochuan","last_name":"Jiang"},{"full_name":"Lee, Seungho","last_name":"Lee","first_name":"Seungho","id":"BB243B88-D767-11E9-B658-BC13E6697425","orcid":"0000-0002-6962-8598"},{"full_name":"Horta, Sharona","last_name":"Horta","id":"03a7e858-01b1-11ec-8b71-99ae6c4a05bc","first_name":"Sharona"},{"full_name":"Liang, Zhifu","last_name":"Liang","first_name":"Zhifu"},{"first_name":"Xuan","full_name":"Lu, Xuan","last_name":"Lu"},{"last_name":"Ostovari Moghaddam","full_name":"Ostovari Moghaddam, Ahmad","first_name":"Ahmad"},{"first_name":"Junshan","last_name":"Li","full_name":"Li, Junshan"},{"last_name":"Ibáñez","full_name":"Ibáñez, Maria","first_name":"Maria","id":"43C61214-F248-11E8-B48F-1D18A9856A87","orcid":"0000-0001-5013-2843"},{"first_name":"Ying","last_name":"Xu","full_name":"Xu, Ying"},{"first_name":"Yingtang","last_name":"Zhou","full_name":"Zhou, Yingtang"},{"first_name":"Andreu","full_name":"Cabot, Andreu","last_name":"Cabot"}],"type":"journal_article","oa_version":"None","abstract":[{"lang":"eng","text":"High entropy alloys (HEAs) are highly suitable candidate catalysts for oxygen evolution and reduction reactions (OER/ORR) as they offer numerous parameters for optimizing the electronic structure and catalytic sites. Herein, FeCoNiMoW HEA nanoparticles are synthesized using a solution‐based low‐temperature approach. Such FeCoNiMoW nanoparticles show high entropy properties, subtle lattice distortions, and modulated electronic structure, leading to superior OER performance with an overpotential of 233 mV at 10 mA cm<jats:sup>−2</jats:sup> and 276 mV at 100 mA cm<jats:sup>−2</jats:sup>. Density functional theory calculations reveal the electronic structures of the FeCoNiMoW active sites with an optimized d‐band center position that enables suitable adsorption of OOH* intermediates and reduces the Gibbs free energy barrier in the OER process. Aqueous zinc–air batteries (ZABs) based on this HEA demonstrate a high open circuit potential of 1.59 V, a peak power density of 116.9 mW cm<jats:sup>−2</jats:sup>, a specific capacity of 857 mAh g<jats:sub>Zn</jats:sub><jats:sup>−1</jats:sup><jats:sub>,</jats:sub> and excellent stability for over 660 h of continuous charge–discharge cycles. Flexible and solid ZABs are also assembled and tested, displaying excellent charge–discharge performance at different bending angles. This work shows the significance of 4d/5d metal‐modulated electronic structure and optimized adsorption ability to improve the performance of OER/ORR, ZABs, and beyond."}],"status":"public","issue":"46","publication":"Advanced Materials","date_published":"2023-11-16T00:00:00Z","language":[{"iso":"eng"}],"doi":"10.1002/adma.202303719","article_processing_charge":"No","volume":35},{"type":"journal_article","author":[{"first_name":"Richard H.","last_name":"Huang","full_name":"Huang, Richard H."},{"first_name":"Nazia","last_name":"Nayeem","full_name":"Nayeem, Nazia"},{"last_name":"He","full_name":"He, Ye","first_name":"Ye"},{"first_name":"Jorge","last_name":"Morales","full_name":"Morales, Jorge"},{"full_name":"Graham, Duncan","last_name":"Graham","first_name":"Duncan"},{"full_name":"Klajn, Rafal","last_name":"Klajn","id":"8e84690e-1e48-11ed-a02b-a1e6fb8bb53b","first_name":"Rafal"},{"first_name":"Maria","last_name":"Contel","full_name":"Contel, Maria"},{"full_name":"O'Brien, Stephen","last_name":"O'Brien","first_name":"Stephen"},{"first_name":"Rein V.","last_name":"Ulijn","full_name":"Ulijn, Rein V."}],"publisher":"Wiley","day":"06","date_updated":"2023-08-07T09:58:17Z","volume":34,"doi":"10.1002/adma.202104962","article_processing_charge":"No","date_published":"2022-01-06T00:00:00Z","language":[{"iso":"eng"}],"publication":"Advanced Materials","issue":"1","status":"public","abstract":[{"lang":"eng","text":"Supramolecular self-assembly in biological systems holds promise to convert and amplify disease-specific signals to physical or mechanical signals that can direct cell fate. However, it remains challenging to design physiologically stable self-assembling systems that demonstrate tunable and predictable behavior. Here, the use of zwitterionic tetrapeptide modalities to direct nanoparticle assembly under physiological conditions is reported. The self-assembly of gold nanoparticles can be activated by enzymatic unveiling of surface-bound zwitterionic tetrapeptides through matrix metalloprotease-9 (MMP-9), which is overexpressed by cancer cells. This robust nanoparticle assembly is achieved by multivalent, self-complementary interactions of the zwitterionic tetrapeptides. In cancer cells that overexpress MMP-9, the nanoparticle assembly process occurs near the cell membrane and causes size-induced selection of cellular uptake mechanism, resulting in diminished cell growth. The enzyme responsiveness, and therefore, indirectly, the uptake route of the system can be programmed by customizing the peptide sequence: a simple inversion of the two amino acids at the cleavage site completely inactivates the enzyme responsiveness, self-assembly, and consequently changes the endocytic pathway. This robust self-complementary, zwitterionic peptide design demonstrates the use of enzyme-activated electrostatic side-chain patterns as powerful and customizable peptide modalities to program nanoparticle self-assembly and alter cellular response in biological context."}],"oa_version":"Published Version","quality_controlled":"1","title":"Self‐complementary zwitterionic peptides direct nanoparticle assembly and enable enzymatic selection of endocytic pathways","extern":"1","main_file_link":[{"url":"https://doi.org/10.1002/adma.202104962","open_access":"1"}],"date_created":"2023-08-01T09:33:26Z","pmid":1,"citation":{"chicago":"Huang, Richard H., Nazia Nayeem, Ye He, Jorge Morales, Duncan Graham, Rafal Klajn, Maria Contel, Stephen O’Brien, and Rein V. Ulijn. “Self‐complementary Zwitterionic Peptides Direct Nanoparticle Assembly and Enable Enzymatic Selection of Endocytic Pathways.” <i>Advanced Materials</i>. Wiley, 2022. <a href=\"https://doi.org/10.1002/adma.202104962\">https://doi.org/10.1002/adma.202104962</a>.","ieee":"R. H. Huang <i>et al.</i>, “Self‐complementary zwitterionic peptides direct nanoparticle assembly and enable enzymatic selection of endocytic pathways,” <i>Advanced Materials</i>, vol. 34, no. 1. Wiley, 2022.","mla":"Huang, Richard H., et al. “Self‐complementary Zwitterionic Peptides Direct Nanoparticle Assembly and Enable Enzymatic Selection of Endocytic Pathways.” <i>Advanced Materials</i>, vol. 34, no. 1, 2104962, Wiley, 2022, doi:<a href=\"https://doi.org/10.1002/adma.202104962\">10.1002/adma.202104962</a>.","ista":"Huang RH, Nayeem N, He Y, Morales J, Graham D, Klajn R, Contel M, O’Brien S, Ulijn RV. 2022. Self‐complementary zwitterionic peptides direct nanoparticle assembly and enable enzymatic selection of endocytic pathways. Advanced Materials. 34(1), 2104962.","short":"R.H. Huang, N. Nayeem, Y. He, J. Morales, D. Graham, R. Klajn, M. Contel, S. O’Brien, R.V. Ulijn, Advanced Materials 34 (2022).","ama":"Huang RH, Nayeem N, He Y, et al. Self‐complementary zwitterionic peptides direct nanoparticle assembly and enable enzymatic selection of endocytic pathways. <i>Advanced Materials</i>. 2022;34(1). doi:<a href=\"https://doi.org/10.1002/adma.202104962\">10.1002/adma.202104962</a>","apa":"Huang, R. H., Nayeem, N., He, Y., Morales, J., Graham, D., Klajn, R., … Ulijn, R. V. (2022). Self‐complementary zwitterionic peptides direct nanoparticle assembly and enable enzymatic selection of endocytic pathways. <i>Advanced Materials</i>. Wiley. <a href=\"https://doi.org/10.1002/adma.202104962\">https://doi.org/10.1002/adma.202104962</a>"},"article_number":"2104962","publication_identifier":{"issn":["0935-9648"],"eissn":["1521-4095"]},"user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","_id":"13355","keyword":["Mechanical Engineering","Mechanics of Materials","General Materials Science"],"intvolume":"        34","year":"2022","external_id":{"pmid":["34668253"]},"oa":1,"scopus_import":"1","article_type":"original","publication_status":"published","month":"01"},{"citation":{"mla":"Evers, Ferdinand, et al. “Theory of Chirality Induced Spin Selectivity: Progress and Challenges.” <i>Advanced Materials</i>, vol. 34, no. 13, 2106629, Wiley, 2022, doi:<a href=\"https://doi.org/10.1002/adma.202106629\">10.1002/adma.202106629</a>.","chicago":"Evers, Ferdinand, Amnon Aharony, Nir Bar-Gill, Ora Entin-Wohlman, Per Hedegård, Oded Hod, Pavel Jelinek, et al. “Theory of Chirality Induced Spin Selectivity: Progress and Challenges.” <i>Advanced Materials</i>. Wiley, 2022. <a href=\"https://doi.org/10.1002/adma.202106629\">https://doi.org/10.1002/adma.202106629</a>.","ieee":"F. Evers <i>et al.</i>, “Theory of chirality induced spin selectivity: Progress and challenges,” <i>Advanced Materials</i>, vol. 34, no. 13. Wiley, 2022.","apa":"Evers, F., Aharony, A., Bar-Gill, N., Entin-Wohlman, O., Hedegård, P., Hod, O., … Kronik, L. (2022). Theory of chirality induced spin selectivity: Progress and challenges. <i>Advanced Materials</i>. Wiley. <a href=\"https://doi.org/10.1002/adma.202106629\">https://doi.org/10.1002/adma.202106629</a>","ama":"Evers F, Aharony A, Bar-Gill N, et al. Theory of chirality induced spin selectivity: Progress and challenges. <i>Advanced Materials</i>. 2022;34(13). doi:<a href=\"https://doi.org/10.1002/adma.202106629\">10.1002/adma.202106629</a>","ista":"Evers F, Aharony A, Bar-Gill N, Entin-Wohlman O, Hedegård P, Hod O, Jelinek P, Kamieniarz G, Lemeshko M, Michaeli K, Mujica V, Naaman R, Paltiel Y, Refaely-Abramson S, Tal O, Thijssen J, Thoss M, Van Ruitenbeek JM, Venkataraman L, Waldeck DH, Yan B, Kronik L. 2022. Theory of chirality induced spin selectivity: Progress and challenges. Advanced Materials. 34(13), 2106629.","short":"F. Evers, A. Aharony, N. Bar-Gill, O. Entin-Wohlman, P. Hedegård, O. Hod, P. Jelinek, G. Kamieniarz, M. Lemeshko, K. Michaeli, V. Mujica, R. Naaman, Y. Paltiel, S. Refaely-Abramson, O. Tal, J. Thijssen, M. Thoss, J.M. Van Ruitenbeek, L. Venkataraman, D.H. Waldeck, B. Yan, L. Kronik, Advanced Materials 34 (2022)."},"pmid":1,"department":[{"_id":"MiLe"}],"quality_controlled":"1","title":"Theory of chirality induced spin selectivity: Progress and challenges","main_file_link":[{"url":"https://arxiv.org/abs/2108.09998","open_access":"1"}],"date_created":"2022-02-20T23:01:33Z","user_id":"ba8df636-2132-11f1-aed0-ed93e2281fdd","_id":"10771","article_number":"2106629","publication_identifier":{"eissn":["1521-4095"],"issn":["0935-9648"]},"year":"2022","external_id":{"isi":["000753795900001"],"pmid":["35064943"],"arxiv":["2108.09998"]},"arxiv":1,"intvolume":"        34","month":"04","article_type":"review","scopus_import":"1","oa":1,"publication_status":"published","author":[{"first_name":"Ferdinand","full_name":"Evers, Ferdinand","last_name":"Evers"},{"first_name":"Amnon","full_name":"Aharony, Amnon","last_name":"Aharony"},{"full_name":"Bar-Gill, Nir","last_name":"Bar-Gill","first_name":"Nir"},{"first_name":"Ora","full_name":"Entin-Wohlman, Ora","last_name":"Entin-Wohlman"},{"full_name":"Hedegård, Per","last_name":"Hedegård","first_name":"Per"},{"full_name":"Hod, Oded","last_name":"Hod","first_name":"Oded"},{"first_name":"Pavel","last_name":"Jelinek","full_name":"Jelinek, Pavel"},{"first_name":"Grzegorz","last_name":"Kamieniarz","full_name":"Kamieniarz, Grzegorz"},{"last_name":"Lemeshko","full_name":"Lemeshko, Mikhail","orcid":"0000-0002-6990-7802","id":"37CB05FA-F248-11E8-B48F-1D18A9856A87","first_name":"Mikhail"},{"last_name":"Michaeli","full_name":"Michaeli, Karen","first_name":"Karen"},{"full_name":"Mujica, Vladimiro","last_name":"Mujica","first_name":"Vladimiro"},{"last_name":"Naaman","full_name":"Naaman, Ron","first_name":"Ron"},{"full_name":"Paltiel, Yossi","last_name":"Paltiel","first_name":"Yossi"},{"first_name":"Sivan","last_name":"Refaely-Abramson","full_name":"Refaely-Abramson, Sivan"},{"first_name":"Oren","full_name":"Tal, Oren","last_name":"Tal"},{"full_name":"Thijssen, Jos","last_name":"Thijssen","first_name":"Jos"},{"first_name":"Michael","last_name":"Thoss","full_name":"Thoss, Michael"},{"last_name":"Van Ruitenbeek","full_name":"Van Ruitenbeek, Jan M.","first_name":"Jan M."},{"last_name":"Venkataraman","full_name":"Venkataraman, Latha","first_name":"Latha"},{"full_name":"Waldeck, David H.","last_name":"Waldeck","first_name":"David H."},{"first_name":"Binghai","full_name":"Yan, Binghai","last_name":"Yan"},{"full_name":"Kronik, Leeor","last_name":"Kronik","first_name":"Leeor"}],"publisher":"Wiley","type":"journal_article","date_updated":"2026-04-02T12:45:15Z","day":"01","isi":1,"language":[{"iso":"eng"}],"date_published":"2022-04-01T00:00:00Z","volume":34,"doi":"10.1002/adma.202106629","article_processing_charge":"No","oa_version":"Preprint","publication":"Advanced Materials","issue":"13","status":"public","abstract":[{"lang":"eng","text":"A critical overview of the theory of the chirality-induced spin selectivity (CISS) effect, that is, phenomena in which the chirality of molecular species imparts significant spin selectivity to various electron processes, is provided. Based on discussions in a recently held workshop, and further work published since, the status of CISS effects—in electron transmission, electron transport, and chemical reactions—is reviewed. For each, a detailed discussion of the state-of-the-art in theoretical understanding is provided and remaining challenges and research opportunities are identified."}]},{"related_material":{"record":[{"status":"public","relation":"dissertation_contains","id":"12885"},{"id":"17062","relation":"later_version","status":"public"}]},"keyword":["mechanical engineering","mechanics of materials","general materials science"],"intvolume":"        33","external_id":{"isi":["000709899300001"],"pmid":["34626034"]},"year":"2021","scopus_import":"1","oa":1,"article_type":"original","ddc":["620"],"acknowledgement":"Y.L. and M.C. contributed equally to this work. This research was supported by the Scientific Service Units (SSU) of IST Austria through resources provided by Electron Microscopy Facility (EMF) and the Nanofabrication Facility (NNF). This work was financially supported by IST Austria and the Werner Siemens Foundation. Y.L. acknowledges funding from the European Union's Horizon 2020 research and innovation program under the Marie Sklodowska-Curie grant agreement No. 754411. M.C. has received funding from the European Union's Horizon 2020 research and innovation program under the Marie Skłodowska-Curie Grant Agreement No. 665385. Y.Y. and O.C.-M. acknowledge the financial support from DFG within the project SFB 917: Nanoswitches. J.L. is a Serra Húnter Fellow and is grateful to ICREA Academia program. C.C. acknowledges funding from the FWF “Lise Meitner Fellowship” grant agreement M 2889-N.","publication_status":"published","acknowledged_ssus":[{"_id":"EM-Fac"},{"_id":"NanoFab"}],"month":"12","title":"The importance of surface adsorbates in solution‐processed thermoelectric materials: The case of SnSe","quality_controlled":"1","department":[{"_id":"EM-Fac"},{"_id":"MaIb"}],"date_created":"2021-10-11T20:07:24Z","citation":{"ieee":"Y. Liu <i>et al.</i>, “The importance of surface adsorbates in solution‐processed thermoelectric materials: The case of SnSe,” <i>Advanced Materials</i>, vol. 33, no. 52. Wiley, 2021.","chicago":"Liu, Yu, Mariano Calcabrini, Yuan Yu, Aziz Genç, Cheng Chang, Tommaso Costanzo, Tobias Kleinhanns, et al. “The Importance of Surface Adsorbates in Solution‐processed Thermoelectric Materials: The Case of SnSe.” <i>Advanced Materials</i>. Wiley, 2021. <a href=\"https://doi.org/10.1002/adma.202106858\">https://doi.org/10.1002/adma.202106858</a>.","mla":"Liu, Yu, et al. “The Importance of Surface Adsorbates in Solution‐processed Thermoelectric Materials: The Case of SnSe.” <i>Advanced Materials</i>, vol. 33, no. 52, 2106858, Wiley, 2021, doi:<a href=\"https://doi.org/10.1002/adma.202106858\">10.1002/adma.202106858</a>.","short":"Y. Liu, M. Calcabrini, Y. Yu, A. Genç, C. Chang, T. Costanzo, T. Kleinhanns, S. Lee, J. Llorca, O. Cojocaru‐Mirédin, M. Ibáñez, Advanced Materials 33 (2021).","ista":"Liu Y, Calcabrini M, Yu Y, Genç A, Chang C, Costanzo T, Kleinhanns T, Lee S, Llorca J, Cojocaru‐Mirédin O, Ibáñez M. 2021. The importance of surface adsorbates in solution‐processed thermoelectric materials: The case of SnSe. Advanced Materials. 33(52), 2106858.","apa":"Liu, Y., Calcabrini, M., Yu, Y., Genç, A., Chang, C., Costanzo, T., … Ibáñez, M. (2021). The importance of surface adsorbates in solution‐processed thermoelectric materials: The case of SnSe. <i>Advanced Materials</i>. Wiley. <a href=\"https://doi.org/10.1002/adma.202106858\">https://doi.org/10.1002/adma.202106858</a>","ama":"Liu Y, Calcabrini M, Yu Y, et al. The importance of surface adsorbates in solution‐processed thermoelectric materials: The case of SnSe. <i>Advanced Materials</i>. 2021;33(52). doi:<a href=\"https://doi.org/10.1002/adma.202106858\">10.1002/adma.202106858</a>"},"pmid":1,"has_accepted_license":"1","tmp":{"legal_code_url":"https://creativecommons.org/licenses/by/4.0/legalcode","name":"Creative Commons Attribution 4.0 International Public License (CC-BY 4.0)","image":"/images/cc_by.png","short":"CC BY (4.0)"},"ec_funded":1,"article_number":"2106858","publication_identifier":{"issn":["0935-9648"],"eissn":["1521-4095"]},"user_id":"4359f0d1-fa6c-11eb-b949-802e58b17ae8","_id":"10123","volume":33,"doi":"10.1002/adma.202106858","article_processing_charge":"Yes (via OA deal)","date_published":"2021-12-29T00:00:00Z","language":[{"iso":"eng"}],"file_date_updated":"2022-02-03T13:16:14Z","issue":"52","publication":"Advanced Materials","file":[{"access_level":"open_access","file_id":"10720","date_updated":"2022-02-03T13:16:14Z","file_name":"2021_AdvancedMaterials_Liu.pdf","creator":"cchlebak","file_size":5595666,"content_type":"application/pdf","success":1,"checksum":"990bccc527c64d85cf1c97885110b5f4","date_created":"2022-02-03T13:16:14Z","relation":"main_file"}],"corr_author":"1","abstract":[{"lang":"eng","text":"Solution synthesis of particles emerged as an alternative to prepare thermoelectric materials with less demanding processing conditions than conventional solid-state synthetic methods. However, solution synthesis generally involves the presence of additional molecules or ions belonging to the precursors or added to enable solubility and/or regulate nucleation and growth. These molecules or ions can end up in the particles as surface adsorbates and interfere in the material properties. This work demonstrates that ionic adsorbates, in particular Na⁺ ions, are electrostatically adsorbed in SnSe particles synthesized in water and play a crucial role not only in directing the material nano/microstructure but also in determining the transport properties of the consolidated material. In dense pellets prepared by sintering SnSe particles, Na remains within the crystal lattice as dopant, in dislocations, precipitates, and forming grain boundary complexions. These results highlight the importance of considering all the possible unintentional impurities to establish proper structure-property relationships and control material properties in solution-processed thermoelectric materials."}],"status":"public","oa_version":"Published Version","type":"journal_article","author":[{"first_name":"Yu","id":"2A70014E-F248-11E8-B48F-1D18A9856A87","orcid":"0000-0001-7313-6740","last_name":"Liu","full_name":"Liu, Yu"},{"last_name":"Calcabrini","full_name":"Calcabrini, Mariano","orcid":"0000-0003-4566-5877","first_name":"Mariano","id":"45D7531A-F248-11E8-B48F-1D18A9856A87"},{"last_name":"Yu","full_name":"Yu, Yuan","first_name":"Yuan"},{"first_name":"Aziz","full_name":"Genç, Aziz","last_name":"Genç"},{"orcid":"0000-0002-9515-4277","id":"9E331C2E-9F27-11E9-AE48-5033E6697425","first_name":"Cheng","full_name":"Chang, Cheng","last_name":"Chang"},{"last_name":"Costanzo","full_name":"Costanzo, Tommaso","orcid":"0000-0001-9732-3815","id":"D93824F4-D9BA-11E9-BB12-F207E6697425","first_name":"Tommaso"},{"id":"8BD9DE16-AB3C-11E9-9C8C-2A03E6697425","first_name":"Tobias","orcid":"0000-0003-1537-7436","last_name":"Kleinhanns","full_name":"Kleinhanns, Tobias"},{"first_name":"Seungho","id":"BB243B88-D767-11E9-B658-BC13E6697425","orcid":"0000-0002-6962-8598","full_name":"Lee, Seungho","last_name":"Lee"},{"full_name":"Llorca, Jordi","last_name":"Llorca","first_name":"Jordi"},{"first_name":"Oana","last_name":"Cojocaru‐Mirédin","full_name":"Cojocaru‐Mirédin, Oana"},{"orcid":"0000-0001-5013-2843","first_name":"Maria","id":"43C61214-F248-11E8-B48F-1D18A9856A87","last_name":"Ibáñez","full_name":"Ibáñez, Maria"}],"publisher":"Wiley","day":"29","project":[{"_id":"2564DBCA-B435-11E9-9278-68D0E5697425","call_identifier":"H2020","grant_number":"665385","name":"International IST Doctoral Program"},{"grant_number":"754411","name":"ISTplus - Postdoctoral Fellowships","_id":"260C2330-B435-11E9-9278-68D0E5697425","call_identifier":"H2020"},{"_id":"9B8804FC-BA93-11EA-9121-9846C619BF3A","name":"Bottom-up Engineering for Thermoelectric Applications","grant_number":"M02889"},{"_id":"9B8F7476-BA93-11EA-9121-9846C619BF3A","name":"HighTE: The Werner Siemens Laboratory for the High Throughput Discovery of Semiconductors for Waste Heat Recovery"}],"isi":1,"date_updated":"2026-07-06T13:07:38Z"},{"author":[{"last_name":"Gao","full_name":"Gao, Fei","first_name":"Fei"},{"first_name":"Jian‐Huan","full_name":"Wang, Jian‐Huan","last_name":"Wang"},{"full_name":"Watzinger, Hannes","last_name":"Watzinger","first_name":"Hannes","id":"35DF8E50-F248-11E8-B48F-1D18A9856A87"},{"full_name":"Hu, Hao","last_name":"Hu","first_name":"Hao"},{"last_name":"Rančić","full_name":"Rančić, Marko J.","first_name":"Marko J."},{"last_name":"Zhang","full_name":"Zhang, Jie‐Yin","first_name":"Jie‐Yin"},{"first_name":"Ting","full_name":"Wang, Ting","last_name":"Wang"},{"full_name":"Yao, Yuan","last_name":"Yao","first_name":"Yuan"},{"first_name":"Gui‐Lei","full_name":"Wang, Gui‐Lei","last_name":"Wang"},{"last_name":"Kukucka","full_name":"Kukucka, Josip","first_name":"Josip","id":"3F5D8856-F248-11E8-B48F-1D18A9856A87"},{"full_name":"Vukušić, Lada","last_name":"Vukušić","orcid":"0000-0003-2424-8636","id":"31E9F056-F248-11E8-B48F-1D18A9856A87","first_name":"Lada"},{"last_name":"Kloeffel","full_name":"Kloeffel, Christoph","first_name":"Christoph"},{"first_name":"Daniel","last_name":"Loss","full_name":"Loss, Daniel"},{"first_name":"Feng","full_name":"Liu, Feng","last_name":"Liu"},{"full_name":"Katsaros, Georgios","last_name":"Katsaros","orcid":"0000-0001-8342-202X","first_name":"Georgios","id":"38DB5788-F248-11E8-B48F-1D18A9856A87"},{"first_name":"Jian‐Jun","last_name":"Zhang","full_name":"Zhang, Jian‐Jun"}],"publisher":"Wiley","type":"other_academic_publication","date_updated":"2026-06-18T17:54:47Z","day":"23","language":[{"iso":"eng"}],"date_published":"2020-04-23T00:00:00Z","volume":32,"article_processing_charge":"No","doi":"10.1002/adma.202070122","oa_version":"Published Version","issue":"16","publication":"Advanced Materials","abstract":[{"lang":"eng","text":"The first wafer-scale growth of site-controlled Ge/Si nanowires is reported by Georgios Katsaros, Jian-Jun Zhang, and co-workers in article number 1906523. They are highly uniform and their position, distance, length, and even square- or L-shaped structures can all be precisely controlled. The electrically tunable spin-orbit coupling demonstrated by transport measurements and the charge sensing between quantum dots in closely spaced wires open a path toward scalable qubit devices using nanowires on silicon."}],"status":"public","citation":{"ama":"Gao F, Wang J, Watzinger H, et al. <i>Nanowires: Site‐controlled Uniform Ge/Si Hut Wires with Electrically Tunable Spin–Orbit Coupling (Adv. Mater. 16/2020)</i>. Vol 32. Wiley; 2020. doi:<a href=\"https://doi.org/10.1002/adma.202070122\">10.1002/adma.202070122</a>","apa":"Gao, F., Wang, J., Watzinger, H., Hu, H., Rančić, M. J., Zhang, J., … Zhang, J. (2020). <i>Nanowires: Site‐controlled uniform Ge/Si Hut wires with electrically tunable spin–orbit coupling (Adv. Mater. 16/2020)</i>. <i>Advanced Materials</i> (Vol. 32). Wiley. <a href=\"https://doi.org/10.1002/adma.202070122\">https://doi.org/10.1002/adma.202070122</a>","ista":"Gao F, Wang J, Watzinger H, Hu H, Rančić MJ, Zhang J, Wang T, Yao Y, Wang G, Kukucka J, Vukušić L, Kloeffel C, Loss D, Liu F, Katsaros G, Zhang J. 2020. Nanowires: Site‐controlled uniform Ge/Si Hut wires with electrically tunable spin–orbit coupling (Adv. Mater. 16/2020), Wiley,p.","short":"F. Gao, J. Wang, H. Watzinger, H. Hu, M.J. Rančić, J. Zhang, T. Wang, Y. Yao, G. Wang, J. Kukucka, L. Vukušić, C. Kloeffel, D. Loss, F. Liu, G. Katsaros, J. Zhang, Nanowires: Site‐controlled Uniform Ge/Si Hut Wires with Electrically Tunable Spin–Orbit Coupling (Adv. Mater. 16/2020), Wiley, 2020.","mla":"Gao, Fei, et al. “Nanowires: Site‐controlled Uniform Ge/Si Hut Wires with Electrically Tunable Spin–Orbit Coupling (Adv. Mater. 16/2020).” <i>Advanced Materials</i>, vol. 32, no. 16, 2070122, Wiley, 2020, doi:<a href=\"https://doi.org/10.1002/adma.202070122\">10.1002/adma.202070122</a>.","chicago":"Gao, Fei, Jian‐Huan Wang, Hannes Watzinger, Hao Hu, Marko J. Rančić, Jie‐Yin Zhang, Ting Wang, et al. <i>Nanowires: Site‐controlled Uniform Ge/Si Hut Wires with Electrically Tunable Spin–Orbit Coupling (Adv. Mater. 16/2020)</i>. <i>Advanced Materials</i>. Vol. 32. Wiley, 2020. <a href=\"https://doi.org/10.1002/adma.202070122\">https://doi.org/10.1002/adma.202070122</a>.","ieee":"F. Gao <i>et al.</i>, <i>Nanowires: Site‐controlled uniform Ge/Si Hut wires with electrically tunable spin–orbit coupling (Adv. Mater. 16/2020)</i>, vol. 32, no. 16. Wiley, 2020."},"title":"Nanowires: Site‐controlled uniform Ge/Si Hut wires with electrically tunable spin–orbit coupling (Adv. Mater. 16/2020)","department":[{"_id":"GeKa"}],"quality_controlled":"1","main_file_link":[{"open_access":"1","url":"https://doi.org/10.1002/adma.202070122"}],"date_created":"2024-08-20T08:22:42Z","user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","_id":"17444","article_number":"2070122","publication_identifier":{"issn":["0935-9648"],"eissn":["1521-4095"]},"year":"2020","related_material":{"record":[{"id":"7541","status":"public","relation":"other"}]},"intvolume":"        32","month":"04","oa":1,"ddc":["530"],"publication_status":"published"},{"pmid":1,"citation":{"ieee":"T. Bian, Z. Chu, and R. Klajn, “The many ways to assemble nanoparticles using light,” <i>Advanced Materials</i>, vol. 32, no. 20. Wiley, 2019.","chicago":"Bian, Tong, Zonglin Chu, and Rafal Klajn. “The Many Ways to Assemble Nanoparticles Using Light.” <i>Advanced Materials</i>. Wiley, 2019. <a href=\"https://doi.org/10.1002/adma.201905866\">https://doi.org/10.1002/adma.201905866</a>.","mla":"Bian, Tong, et al. “The Many Ways to Assemble Nanoparticles Using Light.” <i>Advanced Materials</i>, vol. 32, no. 20, 1905866, Wiley, 2019, doi:<a href=\"https://doi.org/10.1002/adma.201905866\">10.1002/adma.201905866</a>.","short":"T. Bian, Z. Chu, R. Klajn, Advanced Materials 32 (2019).","ista":"Bian T, Chu Z, Klajn R. 2019. The many ways to assemble nanoparticles using light. Advanced Materials. 32(20), 1905866.","apa":"Bian, T., Chu, Z., &#38; Klajn, R. (2019). The many ways to assemble nanoparticles using light. <i>Advanced Materials</i>. Wiley. <a href=\"https://doi.org/10.1002/adma.201905866\">https://doi.org/10.1002/adma.201905866</a>","ama":"Bian T, Chu Z, Klajn R. The many ways to assemble nanoparticles using light. <i>Advanced Materials</i>. 2019;32(20). doi:<a href=\"https://doi.org/10.1002/adma.201905866\">10.1002/adma.201905866</a>"},"extern":"1","date_created":"2023-08-01T09:37:26Z","quality_controlled":"1","title":"The many ways to assemble nanoparticles using light","_id":"13366","user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","publication_identifier":{"eissn":["1521-4095"],"issn":["0935-9648"]},"article_number":"1905866","year":"2019","external_id":{"pmid":["31709655"]},"intvolume":"        32","keyword":["Mechanical Engineering","Mechanics of Materials","General Materials Science"],"month":"11","publication_status":"published","article_type":"original","scopus_import":"1","publisher":"Wiley","author":[{"full_name":"Bian, Tong","last_name":"Bian","first_name":"Tong"},{"full_name":"Chu, Zonglin","last_name":"Chu","first_name":"Zonglin"},{"full_name":"Klajn, Rafal","last_name":"Klajn","id":"8e84690e-1e48-11ed-a02b-a1e6fb8bb53b","first_name":"Rafal"}],"type":"journal_article","date_updated":"2024-10-14T12:13:25Z","day":"19","date_published":"2019-11-19T00:00:00Z","language":[{"iso":"eng"}],"doi":"10.1002/adma.201905866","article_processing_charge":"No","volume":32,"oa_version":"None","status":"public","abstract":[{"text":"The ability to reversibly assemble nanoparticles using light is both fundamentally interesting and important for applications ranging from reversible data storage to controlled drug delivery. Here, the diverse approaches that have so far been developed to control the self-assembly of nanoparticles using light are reviewed and compared. These approaches include functionalizing nanoparticles with monolayers of photoresponsive molecules, placing them in photoresponsive media capable of reversibly protonating the particles under light, and decorating plasmonic nanoparticles with thermoresponsive polymers, to name just a few. The applicability of these methods to larger, micrometer-sized particles is also discussed. Finally, several perspectives on further developments in the field are offered.","lang":"eng"}],"publication":"Advanced Materials","issue":"20"},{"intvolume":"        31","year":"2019","external_id":{"pmid":["30869177"]},"oa":1,"scopus_import":"1","article_type":"original","license":"https://creativecommons.org/licenses/by-nc/4.0/","ddc":["540"],"publication_status":"published","month":"04","quality_controlled":"1","title":"Synthesis of colloidal SU‐8 polymer rods using sonication","extern":"1","date_created":"2026-06-30T06:30:50Z","main_file_link":[{"url":"https://doi.org/10.1002/adma.201807514","open_access":"1"}],"has_accepted_license":"1","pmid":1,"citation":{"mla":"Fernández-Rico, Carla, et al. “Synthesis of Colloidal SU‐8 Polymer Rods Using Sonication.” <i>Advanced Materials</i>, vol. 31, no. 17, 1807514, Wiley, 2019, doi:<a href=\"https://doi.org/10.1002/adma.201807514\">10.1002/adma.201807514</a>.","ieee":"C. Fernández-Rico, T. Yanagishima, A. Curran, D. G. A. L. Aarts, and R. P. A. Dullens, “Synthesis of colloidal SU‐8 polymer rods using sonication,” <i>Advanced Materials</i>, vol. 31, no. 17. Wiley, 2019.","chicago":"Fernández-Rico, Carla, Taiki Yanagishima, Arran Curran, Dirk G. A. L. Aarts, and Roel P. A. Dullens. “Synthesis of Colloidal SU‐8 Polymer Rods Using Sonication.” <i>Advanced Materials</i>. Wiley, 2019. <a href=\"https://doi.org/10.1002/adma.201807514\">https://doi.org/10.1002/adma.201807514</a>.","ama":"Fernández-Rico C, Yanagishima T, Curran A, Aarts DGAL, Dullens RPA. Synthesis of colloidal SU‐8 polymer rods using sonication. <i>Advanced Materials</i>. 2019;31(17). doi:<a href=\"https://doi.org/10.1002/adma.201807514\">10.1002/adma.201807514</a>","apa":"Fernández-Rico, C., Yanagishima, T., Curran, A., Aarts, D. G. A. L., &#38; Dullens, R. P. A. (2019). Synthesis of colloidal SU‐8 polymer rods using sonication. <i>Advanced Materials</i>. Wiley. <a href=\"https://doi.org/10.1002/adma.201807514\">https://doi.org/10.1002/adma.201807514</a>","short":"C. Fernández-Rico, T. Yanagishima, A. Curran, D.G.A.L. Aarts, R.P.A. Dullens, Advanced Materials 31 (2019).","ista":"Fernández-Rico C, Yanagishima T, Curran A, Aarts DGAL, Dullens RPA. 2019. Synthesis of colloidal SU‐8 polymer rods using sonication. Advanced Materials. 31(17), 1807514."},"tmp":{"name":"Creative Commons Attribution-NonCommercial 4.0 International (CC BY-NC 4.0)","legal_code_url":"https://creativecommons.org/licenses/by-nc/4.0/legalcode","short":"CC BY-NC (4.0)","image":"/images/cc_by_nc.png"},"article_number":"1807514","OA_place":"publisher","publication_identifier":{"eissn":["1521-4095"],"issn":["0935-9648"]},"user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","_id":"22208","volume":31,"article_processing_charge":"No","doi":"10.1002/adma.201807514","date_published":"2019-04-25T00:00:00Z","OA_type":"hybrid","language":[{"iso":"eng"}],"publication":"Advanced Materials","issue":"17","status":"public","abstract":[{"lang":"eng","text":"The bulk synthesis of fluorescent colloidal SU‐8 polymer rods with tunable dimensions is described. The colloidal SU‐8 rods are prepared by shearing an emulsion of SU‐8 polymer droplets and then exposing the resulting non‐Brownian rods to ultrasonic waves, which breaks them into colloidal rods with typical lengths of 3.5–10 µm and diameters of 0.4–1 µm. The rods are stable in both aqueous and apolar solvents, and by varying the composition of apolar solvent mixtures both the difference in refractive index and mass density between particles and solvent can be independently controlled. Consequently, these colloidal SU‐8 rods can be used in both 3D confocal microscopy and optical trapping experiments while carefully tuning the effect of gravity. This is demonstrated by using confocal microscopy to image the liquid crystalline phases and the isotropic–nematic interface formed by the colloidal SU‐8 rods and by optically trapping single rods in water. Finally, the simultaneous confocal imaging and optical manipulation of multiple SU‐8 rods in the isotropic phase is shown."}],"oa_version":"Published Version","type":"journal_article","publisher":"Wiley","author":[{"last_name":"Fernández-Rico","full_name":"Fernández-Rico, Carla","first_name":"Carla","id":"492def71-6250-11f0-b278-d41dbd241b62"},{"first_name":"Taiki","full_name":"Yanagishima, Taiki","last_name":"Yanagishima"},{"full_name":"Curran, Arran","last_name":"Curran","first_name":"Arran"},{"last_name":"Aarts","full_name":"Aarts, Dirk G. A. L.","first_name":"Dirk G. A. L."},{"first_name":"Roel P. A.","full_name":"Dullens, Roel P. A.","last_name":"Dullens"}],"day":"25","date_updated":"2026-07-15T06:22:53Z"},{"month":"10","scopus_import":"1","article_type":"original","publication_status":"published","external_id":{"pmid":["29520846"]},"year":"2018","keyword":["Mechanical Engineering","Mechanics of Materials","General Materials Science"],"intvolume":"        30","user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","_id":"13375","article_number":"1706750","publication_identifier":{"issn":["0935-9648"],"eissn":["1521-4095"]},"citation":{"ieee":"S. De and R. Klajn, “Dissipative self-assembly driven by the consumption of chemical fuels,” <i>Advanced Materials</i>, vol. 30, no. 41. Wiley, 2018.","chicago":"De, Soumen, and Rafal Klajn. “Dissipative Self-Assembly Driven by the Consumption of Chemical Fuels.” <i>Advanced Materials</i>. Wiley, 2018. <a href=\"https://doi.org/10.1002/adma.201706750\">https://doi.org/10.1002/adma.201706750</a>.","mla":"De, Soumen, and Rafal Klajn. “Dissipative Self-Assembly Driven by the Consumption of Chemical Fuels.” <i>Advanced Materials</i>, vol. 30, no. 41, 1706750, Wiley, 2018, doi:<a href=\"https://doi.org/10.1002/adma.201706750\">10.1002/adma.201706750</a>.","short":"S. De, R. Klajn, Advanced Materials 30 (2018).","ista":"De S, Klajn R. 2018. Dissipative self-assembly driven by the consumption of chemical fuels. Advanced Materials. 30(41), 1706750.","ama":"De S, Klajn R. Dissipative self-assembly driven by the consumption of chemical fuels. <i>Advanced Materials</i>. 2018;30(41). doi:<a href=\"https://doi.org/10.1002/adma.201706750\">10.1002/adma.201706750</a>","apa":"De, S., &#38; Klajn, R. (2018). Dissipative self-assembly driven by the consumption of chemical fuels. <i>Advanced Materials</i>. Wiley. <a href=\"https://doi.org/10.1002/adma.201706750\">https://doi.org/10.1002/adma.201706750</a>"},"pmid":1,"title":"Dissipative self-assembly driven by the consumption of chemical fuels","quality_controlled":"1","date_created":"2023-08-01T09:39:46Z","extern":"1","oa_version":"None","issue":"41","publication":"Advanced Materials","abstract":[{"lang":"eng","text":"Dissipative self-assembly leads to structures and materials that exist away from equilibrium by continuously exchanging energy and materials with the external environment. Although this mode of self-assembly is ubiquitous in nature, where it gives rise to functions such as signal processing, motility, self-healing, self-replication, and ultimately life, examples of dissipative self-assembly processes in man-made systems are few and far between. Herein, recent progress in developing diverse synthetic dissipative self-assembly systems is discussed. The systems reported thus far can be categorized into three classes, in which: i) the fuel chemically modifies the building blocks, thus triggering their self-assembly, ii) the fuel acts as a template interacting with the building blocks noncovalently, and iii) transient states are induced by the addition of two mutually exclusive stimuli. These early studies give rise to materials that would be difficult to obtain otherwise, including hydrogels with programmable lifetimes, vesicular nanoreactors, and membranes exhibiting transient conductivity."}],"status":"public","date_published":"2018-10-11T00:00:00Z","language":[{"iso":"eng"}],"volume":30,"doi":"10.1002/adma.201706750","article_processing_charge":"No","date_updated":"2024-10-14T12:14:43Z","day":"11","publisher":"Wiley","author":[{"first_name":"Soumen","full_name":"De, Soumen","last_name":"De"},{"id":"8e84690e-1e48-11ed-a02b-a1e6fb8bb53b","first_name":"Rafal","full_name":"Klajn, Rafal","last_name":"Klajn"}],"type":"journal_article"},{"_id":"13419","user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","publication_identifier":{"eissn":["1521-4095"],"issn":["0935-9648"]},"citation":{"short":"P.J. Wesson, S. Soh, R. Klajn, K.J.M. Bishop, T.P. Gray, B.A. Grzybowski, Advanced Materials 21 (2009) 1911–1915.","ista":"Wesson PJ, Soh S, Klajn R, Bishop KJM, Gray TP, Grzybowski BA. 2009. “Remote” fabrication via three-dimensional reaction-diffusion: Making complex core-and-shell particles and assembling them into open-lattice crystals. Advanced Materials. 21(19), 1911–1915.","ama":"Wesson PJ, Soh S, Klajn R, Bishop KJM, Gray TP, Grzybowski BA. “Remote” fabrication via three-dimensional reaction-diffusion: Making complex core-and-shell particles and assembling them into open-lattice crystals. <i>Advanced Materials</i>. 2009;21(19):1911-1915. doi:<a href=\"https://doi.org/10.1002/adma.200802964\">10.1002/adma.200802964</a>","apa":"Wesson, P. J., Soh, S., Klajn, R., Bishop, K. J. M., Gray, T. P., &#38; Grzybowski, B. A. (2009). “Remote” fabrication via three-dimensional reaction-diffusion: Making complex core-and-shell particles and assembling them into open-lattice crystals. <i>Advanced Materials</i>. Wiley. <a href=\"https://doi.org/10.1002/adma.200802964\">https://doi.org/10.1002/adma.200802964</a>","ieee":"P. J. Wesson, S. Soh, R. Klajn, K. J. M. Bishop, T. P. Gray, and B. A. Grzybowski, “‘Remote’ fabrication via three-dimensional reaction-diffusion: Making complex core-and-shell particles and assembling them into open-lattice crystals,” <i>Advanced Materials</i>, vol. 21, no. 19. Wiley, pp. 1911–1915, 2009.","chicago":"Wesson, Paul J., Siowling Soh, Rafal Klajn, Kyle J. M. Bishop, Timothy P. Gray, and Bartosz A. Grzybowski. “‘Remote’ Fabrication via Three-Dimensional Reaction-Diffusion: Making Complex Core-and-Shell Particles and Assembling Them into Open-Lattice Crystals.” <i>Advanced Materials</i>. Wiley, 2009. <a href=\"https://doi.org/10.1002/adma.200802964\">https://doi.org/10.1002/adma.200802964</a>.","mla":"Wesson, Paul J., et al. “‘Remote’ Fabrication via Three-Dimensional Reaction-Diffusion: Making Complex Core-and-Shell Particles and Assembling Them into Open-Lattice Crystals.” <i>Advanced Materials</i>, vol. 21, no. 19, Wiley, 2009, pp. 1911–15, doi:<a href=\"https://doi.org/10.1002/adma.200802964\">10.1002/adma.200802964</a>."},"date_created":"2023-08-01T10:30:04Z","extern":"1","title":"“Remote” fabrication via three-dimensional reaction-diffusion: Making complex core-and-shell particles and assembling them into open-lattice crystals","quality_controlled":"1","month":"05","publication_status":"published","scopus_import":"1","article_type":"original","year":"2009","intvolume":"        21","keyword":["Mechanical Engineering","Mechanics of Materials","General Materials Science"],"date_updated":"2023-08-08T09:04:07Z","day":"18","author":[{"full_name":"Wesson, Paul J.","last_name":"Wesson","first_name":"Paul J."},{"first_name":"Siowling","last_name":"Soh","full_name":"Soh, Siowling"},{"first_name":"Rafal","id":"8e84690e-1e48-11ed-a02b-a1e6fb8bb53b","last_name":"Klajn","full_name":"Klajn, Rafal"},{"last_name":"Bishop","full_name":"Bishop, Kyle J. M.","first_name":"Kyle J. M."},{"first_name":"Timothy P.","full_name":"Gray, Timothy P.","last_name":"Gray"},{"first_name":"Bartosz A.","last_name":"Grzybowski","full_name":"Grzybowski, Bartosz A."}],"publisher":"Wiley","type":"journal_article","oa_version":"None","abstract":[{"lang":"eng","text":"Reaction-diffusion (RD) processes initiated from the surfaces of mesoscopic particles can fabricate complex core-and-shell structures. The propagation of a sharp RD front selectively removes metal colloids or nanoparticles from the supporting gel or polymer matrix. Once fabricated, the core structures can be processed “remotely” via galvanic replacement reactions, and the composite particles can be assembled into open-lattice crystals."}],"status":"public","issue":"19","publication":"Advanced Materials","date_published":"2009-05-18T00:00:00Z","language":[{"iso":"eng"}],"page":"1911-1915","article_processing_charge":"No","doi":"10.1002/adma.200802964","volume":21},{"oa_version":"None","abstract":[{"text":"Hydrogel stamps can microstructure solid surfaces, i.e., modify the surface topology of metals, glasses, and crystals. It is demonstrated that stamps soaked in an appropriate etchant can remove material with micrometer-scale precision. The Figure shows an array of concentric circles etched in glass using the immersion wet stamping process described (scale bar: 500 μm).","lang":"eng"}],"status":"public","issue":"11","publication":"Advanced Materials","date_published":"2005-06-24T00:00:00Z","language":[{"iso":"eng"}],"page":"1361-1365","article_processing_charge":"No","doi":"10.1002/adma.200402086","volume":17,"date_updated":"2023-08-08T11:53:16Z","day":"24","author":[{"last_name":"Smoukov","full_name":"Smoukov, S. K.","first_name":"S. K."},{"last_name":"Bishop","full_name":"Bishop, K. J. M.","first_name":"K. J. M."},{"last_name":"Klajn","full_name":"Klajn, Rafal","id":"8e84690e-1e48-11ed-a02b-a1e6fb8bb53b","first_name":"Rafal"},{"first_name":"C. J.","full_name":"Campbell, C. J.","last_name":"Campbell"},{"first_name":"B. A.","full_name":"Grzybowski, B. A.","last_name":"Grzybowski"}],"publisher":"Wiley","type":"journal_article","month":"06","publication_status":"published","scopus_import":"1","article_type":"original","external_id":{"pmid":["34412440"]},"year":"2005","intvolume":"        17","keyword":["Mechanical Engineering","Mechanics of Materials","General Materials Science"],"_id":"13431","user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","publication_identifier":{"eissn":["1521-4095"],"issn":["0935-9648"]},"citation":{"mla":"Smoukov, S. K., et al. “Cutting into Solids with Micropatterned Gels.” <i>Advanced Materials</i>, vol. 17, no. 11, Wiley, 2005, pp. 1361–65, doi:<a href=\"https://doi.org/10.1002/adma.200402086\">10.1002/adma.200402086</a>.","ieee":"S. K. Smoukov, K. J. M. Bishop, R. Klajn, C. J. Campbell, and B. A. Grzybowski, “Cutting into solids with micropatterned gels,” <i>Advanced Materials</i>, vol. 17, no. 11. Wiley, pp. 1361–1365, 2005.","chicago":"Smoukov, S. K., K. J. M. Bishop, Rafal Klajn, C. J. Campbell, and B. A. Grzybowski. “Cutting into Solids with Micropatterned Gels.” <i>Advanced Materials</i>. Wiley, 2005. <a href=\"https://doi.org/10.1002/adma.200402086\">https://doi.org/10.1002/adma.200402086</a>.","apa":"Smoukov, S. K., Bishop, K. J. M., Klajn, R., Campbell, C. J., &#38; Grzybowski, B. A. (2005). Cutting into solids with micropatterned gels. <i>Advanced Materials</i>. Wiley. <a href=\"https://doi.org/10.1002/adma.200402086\">https://doi.org/10.1002/adma.200402086</a>","ama":"Smoukov SK, Bishop KJM, Klajn R, Campbell CJ, Grzybowski BA. Cutting into solids with micropatterned gels. <i>Advanced Materials</i>. 2005;17(11):1361-1365. doi:<a href=\"https://doi.org/10.1002/adma.200402086\">10.1002/adma.200402086</a>","short":"S.K. Smoukov, K.J.M. Bishop, R. Klajn, C.J. Campbell, B.A. Grzybowski, Advanced Materials 17 (2005) 1361–1365.","ista":"Smoukov SK, Bishop KJM, Klajn R, Campbell CJ, Grzybowski BA. 2005. Cutting into solids with micropatterned gels. Advanced Materials. 17(11), 1361–1365."},"pmid":1,"date_created":"2023-08-01T10:38:01Z","extern":"1","title":"Cutting into solids with micropatterned gels","quality_controlled":"1"},{"_id":"13434","user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","publication_identifier":{"eissn":["1521-4095"],"issn":["0935-9648"]},"citation":{"short":"C.J. Campbell, M. Fialkowski, R. Klajn, I.T. Bensemann, B.A. Grzybowski, Advanced Materials 16 (2004) 1912–1917.","ista":"Campbell CJ, Fialkowski M, Klajn R, Bensemann IT, Grzybowski BA. 2004. Color micro- and nanopatterning with counter-propagating reaction-diffusion fronts. Advanced Materials. 16(21), 1912–1917.","apa":"Campbell, C. J., Fialkowski, M., Klajn, R., Bensemann, I. T., &#38; Grzybowski, B. A. (2004). Color micro- and nanopatterning with counter-propagating reaction-diffusion fronts. <i>Advanced Materials</i>. Wiley. <a href=\"https://doi.org/10.1002/adma.200400383\">https://doi.org/10.1002/adma.200400383</a>","ama":"Campbell CJ, Fialkowski M, Klajn R, Bensemann IT, Grzybowski BA. Color micro- and nanopatterning with counter-propagating reaction-diffusion fronts. <i>Advanced Materials</i>. 2004;16(21):1912-1917. doi:<a href=\"https://doi.org/10.1002/adma.200400383\">10.1002/adma.200400383</a>","ieee":"C. J. Campbell, M. Fialkowski, R. Klajn, I. T. Bensemann, and B. A. Grzybowski, “Color micro- and nanopatterning with counter-propagating reaction-diffusion fronts,” <i>Advanced Materials</i>, vol. 16, no. 21. Wiley, pp. 1912–1917, 2004.","chicago":"Campbell, C. J., M. Fialkowski, Rafal Klajn, I. T. Bensemann, and B. A. Grzybowski. “Color Micro- and Nanopatterning with Counter-Propagating Reaction-Diffusion Fronts.” <i>Advanced Materials</i>. Wiley, 2004. <a href=\"https://doi.org/10.1002/adma.200400383\">https://doi.org/10.1002/adma.200400383</a>.","mla":"Campbell, C. J., et al. “Color Micro- and Nanopatterning with Counter-Propagating Reaction-Diffusion Fronts.” <i>Advanced Materials</i>, vol. 16, no. 21, Wiley, 2004, pp. 1912–17, doi:<a href=\"https://doi.org/10.1002/adma.200400383\">10.1002/adma.200400383</a>."},"extern":"1","date_created":"2023-08-01T10:39:09Z","quality_controlled":"1","title":"Color micro- and nanopatterning with counter-propagating reaction-diffusion fronts","month":"11","publication_status":"published","article_type":"original","scopus_import":"1","year":"2004","intvolume":"        16","keyword":["Mechanical Engineering","Mechanics of Materials","General Materials Science"],"date_updated":"2023-08-08T12:41:23Z","day":"14","author":[{"full_name":"Campbell, C. J.","last_name":"Campbell","first_name":"C. J."},{"first_name":"M.","full_name":"Fialkowski, M.","last_name":"Fialkowski"},{"id":"8e84690e-1e48-11ed-a02b-a1e6fb8bb53b","first_name":"Rafal","full_name":"Klajn, Rafal","last_name":"Klajn"},{"full_name":"Bensemann, I. T.","last_name":"Bensemann","first_name":"I. T."},{"full_name":"Grzybowski, B. A.","last_name":"Grzybowski","first_name":"B. A."}],"publisher":"Wiley","type":"journal_article","oa_version":"None","status":"public","abstract":[{"lang":"eng","text":"Thin films of ionically doped gelatin have been color-patterned with submicrometer precision using the wet-stamping technique. Inorganic salts are delivered onto the gelatin surface from an agarose stamp, and diffuse into the gelatine layer, producting deeply colored precipitates. Reaction fronts originating from different features of the stamp cease within < 1 μm of each other, leaving sharp, transparent regions in between."}],"publication":"Advanced Materials","issue":"21","date_published":"2004-11-14T00:00:00Z","language":[{"iso":"eng"}],"article_processing_charge":"No","doi":"10.1002/adma.200400383","page":"1912-1917","volume":16}]
