材料科学
聚二甲基硅氧烷
压力传感器
多孔性
灵敏度(控制系统)
响应时间
纳米技术
碳纳米管
复合材料
可穿戴计算机
微流控
再现性
可穿戴技术
电子皮肤
光电子学
渲染(计算机图形)
线性关系
线弹性
生物医学工程
压力测量
线性范围
多孔介质
变形(气象学)
压力敏感
3D打印
软传感器
触觉传感器
传感器阵列
机械工程
电容感应
弹性(物理)
作者
Hyeongmin Park,Jinsung Kim,Minwoo Kim,Changhyun Noh,Sumin Myoung,Hyeona Lim,Jaehee Han,Chulhwan Park,Chungryong Choi,Eunho Lee,Sungjun Park,Daegun Kim,Giwon Lee
标识
DOI:10.1002/aelm.202500629
摘要
ABSTRACT Despite significant advances being made in pressure sensor technologies, driven by increasing demand for wearable devices, future Internet of Things (IoT) applications, and electronic skin (e‐skin), critical challenges persist in achieving high sensitivity, high pressure resolution, rapid response, and a wide linear range. Here, we report a cost‐effective and easy‐to‐fabricate pressure sensor that simultaneously achieves high sensitivity and an extensive linear operating range by emulating the multi‐modulus structure of human skin. Typically, these two properties are inversely related, rendering their simultaneous optimization highly challenging. Our sensor design employs a porous structure, composed of two layers of distinct moduli; this is achieved by precisely adjusting the base to crosslinker ratio of polydimethylsiloxane mixed with multi‐walled carbon nanotubes (MWCNTs). The synergistic effect of the MWCNTs and porous structure results in a high sensitivity (2.24 kPa − 1 ), while the dual‐modulus configuration extends the linear response (up to 45 kPa). Moreover, the sensor demonstrates excellent reproducibility and can maintain a stable response even after 6000 cycles of mechanical deformation at 15 kPa. These findings underscore the sensor's efficacy in diverse pressure detection scenarios and its potential for applications in human–machine interface systems and soft robotics.
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