@article{17873,
  abstract     = {<jats:title>Abstract</jats:title><jats:p>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.</jats:p>},
  author       = {Evers, Ferdinand and Aharony, Amnon and Bar‐Gill, Nir and Entin‐Wohlman, Ora and Hedegård, Per and Hod, Oded and Jelinek, Pavel and Kamieniarz, Grzegorz and Lemeshko, Mikhail and Michaeli, Karen and Mujica, Vladimiro and Naaman, Ron and Paltiel, Yossi and Refaely‐Abramson, Sivan and Tal, Oren and Thijssen, Jos and Thoss, Michael and van Ruitenbeek, Jan M. and Venkataraman, Latha and Waldeck, David H. and Yan, Binghai and Kronik, Leeor},
  issn         = {0935-9648},
  journal      = {Advanced Materials},
  number       = {13},
  publisher    = {Wiley},
  title        = {{Theory of chirality induced spin selectivity: Progress and challenges}},
  doi          = {10.1002/adma.202106629},
  volume       = {34},
  year         = {2022},
}

@article{9066,
  abstract     = {The novel electronic state of the canted antiferromagnetic (AFM) insulator, strontium iridate (Sr2IrO4) has been well described by the spin-orbit-entangled isospin Jeff = 1/2, but the role of isospin in transport phenomena remains poorly understood. In this study, antiferromagnet-based spintronic functionality is demonstrated by combining unique characteristics of the isospin state in Sr2IrO4. Based on magnetic and transport measurements, large and highly anisotropic magnetoresistance (AMR) is obtained by manipulating the antiferromagnetic isospin domains. First-principles calculations suggest that electrons whose isospin directions are strongly coupled to in-plane net magnetic moment encounter the isospin mismatch when moving across antiferromagnetic domain boundaries, which generates a high resistance state. By rotating a magnetic field that aligns in-plane net moments and removes domain boundaries, the macroscopically-ordered isospins govern dynamic transport through the system, which leads to the extremely angle-sensitive AMR. As with this work that establishes a link between isospins and magnetotransport in strongly spin-orbit-coupled AFM Sr2IrO4, the peculiar AMR effect provides a beneficial foundation for fundamental and applied research on AFM spintronics.},
  author       = {Lee, Nara and Ko, Eunjung and Choi, Hwan Young and Hong, Yun Jeong and Nauman, Muhammad and Kang, Woun and Choi, Hyoung Joon and Choi, Young Jai and Jo, Younjung},
  issn         = {0935-9648},
  journal      = {Advanced Materials},
  keywords     = {Mechanical Engineering, General Materials Science, Mechanics of Materials},
  number       = {52},
  publisher    = {Wiley},
  title        = {{Antiferromagnet‐based spintronic functionality by controlling isospin domains in a layered perovskite iridate}},
  doi          = {10.1002/adma.201805564},
  volume       = {30},
  year         = {2018},
}

