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Dynamic Cross-Linking and Spatially Programmable Actuation toward Actively Moving and Reprogrammable Liquid Crystal Elastomer Actuators

  • Qing Zhang
  • , Guoxian Zhang
  • , Liang Xiao
  • , Chunmei Li
  • , Qiuyu Zhang
  • , Feijie Ge
  • Northwestern Polytechnical University Xian

Research output: Contribution to journalArticlepeer-review

Abstract

Constructing intrinsic photothermally responsive liquid crystal elastomers (LCEs) and endowing them with facile programmable and reprogrammable multifunctional actuation for untethered polymer actuators remain significant and challenging. Herein, a robust strategy leveraging Michael addition polymerization involving dopamine- and thiolactone-containing dithiols is ingeniously presented. Dual dynamic cross-linking capabilities are achievable, where the initial cross-linking via Fe3+–catechol complexation enables photothermal conversion and actuation, and the spatially programmable secondary cross-linking through thiolactone–cystamine reactions allows for precise patterning of mechanical deformations. The resulting LCEs exhibited remarkable motility, including reversible shape morphing under thermal and near-infrared light stimuli, as well as complex actuation behaviors such as locomotion, rolling, jumping, and self-sustained tumbling. Moreover, these materials retain exceptional reprocessability, enabling the design of reprogrammable polymer actuators with a tailored performance. This work provides a versatile platform for developing advanced soft actuators and opens attractive avenues for applications of LCEs in soft robotics, adaptive devices, and smart materials.

Original languageEnglish
Pages (from-to)5318-5328
Number of pages11
JournalACS Applied Polymer Materials
Volume8
Issue number7
DOIs
StatePublished - 10 Apr 2026

Keywords

  • actively moving
  • light-responsive polymers
  • liquid crystal elastomers
  • polymer actuators
  • reversible shape-changing

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