材料科学
共晶体系
弹性体
导电体
深共晶溶剂
溶剂
热致晶体
智能材料
液晶
电阻率和电导率
电子皮肤
纳米技术
柔性电子器件
离子液体
复合材料
电导率
人工肌肉
电网
信号(编程语言)
材料设计
形状记忆合金
数码产品
电子线路
热传导
电子元件
变形(气象学)
单晶
共金键结
冰点
电容器
光电子学
作者
Mingzhu Wu,Ze-Hong Zhou,Tian‐Tian Hao,Dongping Liu,Lian Duan,Junlei Qi,He‐Lou Xie
标识
DOI:10.1021/acsami.5c12454
摘要
Liquid crystal elastomers (LCEs) have garnered significant attention for their potential in applications, such as soft robotics, electronic sensors, and wearable electronics. However, achieving electrical conductivity while preserving their intrinsic stimulus-responsive deformation remains a key challenge. To address this issue, we have designed and developed a kind of conductive LCEs by incorporating polymerizable deep eutectic solvent (PDES) as a conductive component within LCE substrates. The resultant LCEs exhibit ionic conductivity (σ) ranging from 5.36 × 10 –4 S·cm –1 ± 1.16 × 10 –6 S·cm –1 to 8.19 × 10 –4 S·cm –1 ± 1.55 × 10 –6 S·cm –1 and demonstrate fully reversible thermotropic deformation with substantial maximum shrinkage strain. Leveraging the exceptional thermally actuated contraction behavior and intrinsic electrical conductivity, we engineer a temperature-responsive electrical switching device capable of executing programmable circuit switching operations through temperature-controlled on/off state transitions. This work overcomes the limitations of traditional flexible materials in smart response and electrical signal interaction, providing an innovative direction for the design of next-generation smart materials.
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