Programming liquid crystal elastomers for multistep ambidirectional deformability

Yao Y, Wilborn AM, Lemaire B, Trigka F, Stricker FJ, Weible AH, Li S, Bennett RKA, Cheung TC, Grinthal A, Zhernenkov M, Freychet G, Wąsik P, Kozinsky B, Lerch MM, Wang X, Aizenberg J. 2024. Programming liquid crystal elastomers for multistep ambidirectional deformability. Science. 386(6726), 1161–1168.

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Journal Article | Published | English

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Author
Yao, Yuxing; Wilborn, Atalaya Milan; Lemaire, Baptiste; Trigka, Foteini; Stricker, Friedrich JISTA; Weible, Alan H.; Li, Shucong; Bennett, Robert K. A.; Cheung, Tung Chun; Grinthal, Alison; Zhernenkov, Mikhail; Freychet, Guillaume
All
Abstract
Ambidirectionality, which is the ability of structural elements to move beyond a reference state in two opposite directions, is common in nature. However, conventional soft materials are typically limited to a single, unidirectional deformation unless complex hybrid constructs are used. We exploited the combination of mesogen self-assembly, polymer chain elasticity, and polymerization-induced stress to design liquid crystalline elastomers that exhibit two mesophases: chevron smectic C (cSmC) and smectic A (SmA). Inducing the cSmC-SmA–isotropic phase transition led to an unusual inversion of the strain field in the microstructure, resulting in opposite deformation modes (e.g., consecutive shrinkage or expansion and right-handed or left-handed twisting and tilting in opposite directions) and high-frequency nonmonotonic oscillations. This ambidirectional movement is scalable and can be used to generate Gaussian transformations at the macroscale.
Publishing Year
Date Published
2024-12-06
Journal Title
Science
Publisher
American Association for the Advancement of Science
Volume
386
Issue
6726
Page
1161-1168
ISSN
eISSN
IST-REx-ID

Cite this

Yao Y, Wilborn AM, Lemaire B, et al. Programming liquid crystal elastomers for multistep ambidirectional deformability. Science. 2024;386(6726):1161-1168. doi:10.1126/science.adq6434
Yao, Y., Wilborn, A. M., Lemaire, B., Trigka, F., Stricker, F. J., Weible, A. H., … Aizenberg, J. (2024). Programming liquid crystal elastomers for multistep ambidirectional deformability. Science. American Association for the Advancement of Science. https://doi.org/10.1126/science.adq6434
Yao, Yuxing, Atalaya Milan Wilborn, Baptiste Lemaire, Foteini Trigka, Friedrich J Stricker, Alan H. Weible, Shucong Li, et al. “Programming Liquid Crystal Elastomers for Multistep Ambidirectional Deformability.” Science. American Association for the Advancement of Science, 2024. https://doi.org/10.1126/science.adq6434.
Y. Yao et al., “Programming liquid crystal elastomers for multistep ambidirectional deformability,” Science, vol. 386, no. 6726. American Association for the Advancement of Science, pp. 1161–1168, 2024.
Yao Y, Wilborn AM, Lemaire B, Trigka F, Stricker FJ, Weible AH, Li S, Bennett RKA, Cheung TC, Grinthal A, Zhernenkov M, Freychet G, Wąsik P, Kozinsky B, Lerch MM, Wang X, Aizenberg J. 2024. Programming liquid crystal elastomers for multistep ambidirectional deformability. Science. 386(6726), 1161–1168.
Yao, Yuxing, et al. “Programming Liquid Crystal Elastomers for Multistep Ambidirectional Deformability.” Science, vol. 386, no. 6726, American Association for the Advancement of Science, 2024, pp. 1161–68, doi:10.1126/science.adq6434.

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