摩擦电效应
可穿戴计算机
灵敏度(控制系统)
对偶(语法数字)
可穿戴技术
数码产品
压力传感器
电气工程
纳米技术
材料科学
计算机科学
工程类
嵌入式系统
电子工程
机械工程
艺术
复合材料
文学类
作者
Yukun Zhu,Dongying Wang,Guanghao Gao,Peng Wang,Ronglai Liu,Aijun Zhao,Jianfeng Liu,Chuizhou Meng,Haiyan Shao
标识
DOI:10.1021/acsaelm.5c01005
摘要
Flexible triboelectric pressure sensors have demonstrated significant potential in wearable electronics, electronic skin, human–machine interaction, and robotic tactile sensing. However, the inherent trade-off between sensitivity and dynamic response range remains a critical bottleneck for practical applications. Current research predominantly focuses on enhancing sensitivity through either single-layer microstructure optimization or rigid electrode materials while overlooking the contribution of multilayer heterogeneous structures to the mechano-electrical synergistic effect. Conventional designs employing single-layer or porous architectures are significantly constrained by stress dissipation effects, which substantially limit the detection threshold and response linearity. This study proposes a four-layer composite structural sensor design based on bionic microcone synergistic enhancement. The design features a dual-microstructure dynamic coupling system comprising a metal electrode, silicone rubber triboelectric layer, and a polydimethylsiloxane (PDMS) stress conduction layer, enabling precise force signal transmission and full-field mapping. Experimental results demonstrate that the proposed design exhibits nonlinear sensitivity grading characteristics within the 0–50 kPa range, achieving a 2.3-fold enhancement compared to conventional single-microstructure sensors (without dedicated stress conduction layers) while reducing the hysteresis error to 8.7%.
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