Thermally Gated Covalent Adaptivity in Liquid Crystal Elastomers for Stable Actuation

Y Yixuan Wang (Dr. Li Dak Sum and Yip Yio Chin Center for Stem Cells and Regenerative Medicine, Zhejiang University School of Medicine) E Enjian He H Huan Liang Y Yuting Wang (Dalian Institute of Chemical Physics, Chinese Academy of Sciences) Z Zhijun Yang S Shuhan Zhang Y Yen Wei G Guoli Wang C Chao Gao Y Yan Ji

Abstract

Abstract Liquid crystal elastomers (LCEs), with reversible actuation of large and anisotropic deformation, have surged in smart materials such as soft robotics, sensors and artificial muscles. LCEs incorporating dynamic covalent bonds (DCBs) endowing network with rearranging ability through reversible bond exchange, facilitating the fabrication of soft actuators with tailored actuation modes and reprogrammability. However, unintended activation of DCBs during actuation, particularly under thermal perturbations, remains a critical challenge, as it damages actuation stability which arises catastrophic failure and potential security risks in practical applications. Present strategies in enhancing actuation stability either achieve only transient stability or sacrificed reprogrammability or actuation performance. Here, we propose a strategy incorporating catalyst‐free α‐AC/A DCB of high temperature active‐threshold to fabricate stable exchangeable LCE actuators with thermally gated behavior. This design exhibits a “thermal gate” at 120 °C with inert bond exchange below this threshold, yet rapidly activated at 160 °C. The integrated permanent crosslinks further prevent unintended chain slippage, ensuring topological stability. The resulting exchangeable LCE could be fabricated to actuators efficiently and exhibiting unprecedented durability at 120 °C (sustaining 10 000 actuation cycles). The switch between reprogrammability and actuation stability are long‐standing reversible, meeting the demands of long‐term service without compromising its reprogrammability.

Article Details

Volume / Issue Vol. 64, Issue 29
Published July 14, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

Y

Yixuan Wang

Dr. Li Dak Sum and Yip Yio Chin Center for Stem Cells and Regenerative Medicine, Zhejiang University School of Medicine

E

Enjian He

H

Huan Liang

Y

Yuting Wang

Dalian Institute of Chemical Physics, Chinese Academy of Sciences

Z

Zhijun Yang

S

Shuhan Zhang

Y

Yen Wei

G

Guoli Wang

C

Chao Gao

Y

Yan Ji