材料科学
数码产品
柔性电子器件
触觉传感器
触觉技术
纳米技术
互连
接口(物质)
有限元法
计算机科学
耐久性
模拟
电气工程
电信
人工智能
结构工程
复合材料
工程类
毛细管数
毛细管作用
机器人
作者
Sanwei Hao,Wenqi Wang,Chao Ma,Xin Li,Xidie Liu,Yicong Wang,Zhimin Xue,Feng Xu,Jun Yang
标识
DOI:10.1002/adfm.202410360
摘要
Abstract The sustainable tactile electronics demonstrates huge potential in mimicking the functionality of human skin and satisfies with an eco‐friendly concept. However, on the premise of successfully introducing natural materials, such electronics are still not sufficient for improving the fatigue threshold in high‐frequency sensing scenarios. Here an eco‐ and user‐friendly cellulose integrated tactile array (CITA) is introduced that relies on laminated hierarchical architecture (LAHA) for alleviating the notorious structural vulnerability toward long‐term haptic evaluation. By cross‐validation with conventional bulky configuration, finite element simulation unveils that the LAHA leverages compact laminated adjacent layer for dramatically facilitating in‐plane stress distribution for diminishing the interfacial stress concentration, thus affords prolonged and reliable sensory augmentation. The CITA wireless monitoring system offers impeccable real‐time spatiotemporal haptic patterns on multi‐user interfaces and can substantially promote a record‐high durability (150000 cycles), showcasing low interfacial contact impedance (1.78 ± 0.4 ohm, 1 kHz), remarkably channel uniformity (97.2%), unparalleled sensitivity (12944 kPa −1 ), and sensing‐robustness against perturbations (e.g., humidity, temperature, and bending). It is envisioned that the proposed CITA system will open up new avenues for sustainable tactile electronics in continuous health surveillance.
科研通智能强力驱动
Strongly Powered by AbleSci AI