Eliciting diverse self-regulated actuation pathways from a compositionally uniform liquid crystalline elastomer microstructure
ORAL
Abstract
Traditionally, synthetic microactuator deformations have remained largely simplistic—stemming from uniform responses to stimuli—and non-reconfigurable—as deformations are prescribed through elaborate architectures relying on cumbersome fabrication procedures. Here, we report a conceptually new approach to reconfigurable microactuators: by employing directional stimuli on a single high-aspect-ratio micropost fabricated from compositionally uniform materials (a photoresponsive liquid crystalline elastomer) with tilted directionality, we elicit reversible, multimodal deformations including light-seeking, light-avoiding, clockwise and counterclockwise twisting. By adjusting irradiation conditions, these deformation modes can be turned into non-linear, non-reciprocal, and self-regulated biomimetic actuations. Conceptually, these deformations are made possible by local, directional disruption of order evolving as a traveling order-to-disorder front across the micropillar, deliberate symmetry-breaking, and spontaneously emerging opto-chemo-mechanical feedback loops. The ease of fabrication, unparalleled level of control, and conceptual simplicity bode well for immediate employment of the presented approach in practical applications.
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Presenters
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Shucong Li
Harvard University
Authors
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Shucong Li
Harvard University
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Michael M. Lerch
Harvard University
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Reese S. Martens
Harvard University
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Bolei Deng
Harvard University
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James Waters
Univ of Pittsburgh, University of Pittsburgh
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Yuxing Yao
Harvard University
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Katia Bertoldi
Harvard University, John A. Paulson School of Engineering and Applied Sciences, Harvard University
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Michael Aizenberg
Harvard University
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Anna Balazs
Univ of Pittsburgh, Chemical Engineering Department, University of Pittsburgh, University of Pittsburgh
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Joanna Aizenberg
Harvard University, John A. Paulson School of Engineering and Applied Sciences, Harvard University