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Updated: Oct 21, 2025

Fabrication Process of Silicone-based Dielectric Elastomer Actuators
Published on: February 1, 2016
Adaptively reconstructing network of soft elastomers to increase strand rigidity: towards free-standing
Zheqi Chen1, Zipeng Ma1, Jiali Tang1
1The State Key Laboratory of Chemical Engineering, College of Chemical and Biological Engineering, Zhejiang University, Hangzhou, 310027, China. yingwu.luo@zju.edu.cn.
Abstract:
Soft biological tissues and muscles composed of semiflexible networks exhibit rapid strain-hardening behaviors to protect them from accidental rupture. In contrast, synthetic soft elastomers, usually featuring flexible networks, lack such behaviors, leading to a notorious issue when applying them to a promising artificial muscle technology (dielectric elastomer, DE), that is electromechanical instability (EMI) induced premature breakdown. We report that a facile thermomechanical training method can adaptively reconstruct the network of a soft triblock copolymer elastomer to transform its flexible network strands into semiflexible ones without extra chemical modifications and additives so that the electro-actuation performance is significantly enhanced by avoiding EMI. The free-standing actuators of trained elastomers exhibit a large stable electro-actuation strain and a high theoretical energy density (133%, 307 kJ m-3 at 158.1 V μm-1), and the capacity of actuating at low-temperature environments (-15 °C).
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