材料科学
纳米技术
稳健性(进化)
压阻效应
纳米尺度
电导率
离子
泄漏(经济)
导电体
分子动力学
可穿戴计算机
纳米机电系统
离子液体
自愈水凝胶
弹性(物理)
人体运动
电阻式触摸屏
微电子机械系统
离子电导率
离子键合
纳米纤维
纳米孔
智能材料
可穿戴技术
氢键
作者
Haiyang Hu,Longfang Ren,Guannan Dong,Sijie Yu,Tianlin Chen,Fangfang Dong,Junwen Shi,Hui Li,Taotao Qiang
摘要
ABSTRACT Current polyurethane/ionic liquid (PU/IL) sensors are predominantly restricted to single physical sensing, as well as have great challenge in balancing the mechanical robustness and conductivity. Inspired by the swelling‐enhanced ion migration behavior of plant cell walls, a novel bio‐mimetic polyurethane‐based ionogel (HPU‐IL) was designed, which integrates a hindered urea bond‐crosslinked polyurethane skeleton with [BMIM][TFSI] ionic liquid by hydrogen bonds and electrostatic interactions. This unique structure exhibits excellent conductivity and solvent‐induced swelling, achieving the dual‐modal sensing involving the ion migration‐driven ultra‐sensitive monitoring of solvents leakage and motion sensing. The HPU‐IL as a piezoresistive sensor is capable of accurately capturing human motion signals due to deformation‐induced effect. Once contacting solvents, the rapid swelling of HPU‐IL matrix will expand the nanoscale channels, further accelerating the ion migration and resistance change. This special mechanism that is distinct from traditional sensing pathways triggers a sharp resistance decrease (2 s) and activates the alarms within 15–30 s. The HPU‐IL ionogel demonstrates exceptional elasticity and robustness (805% of elongation, 1.32 MPa), high conductivity (8.3×10 −4 S cm −1 ) and 95% self‐healing efficiency, while exhibiting recyclability and antibacterial properties. This work offers a new idea for the design of multifunctional flexible wearable sensor, showing great potential application in practical scenarios.
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