聚吡咯
标度系数
材料科学
电阻式触摸屏
纤维素
拉伤
细菌纤维素
可穿戴计算机
复合材料
制作
纳米技术
化学工程
计算机科学
聚合物
病理
嵌入式系统
工程类
内科学
替代医学
医学
聚合
计算机视觉
作者
Chong Gao,Yingcun Liu,Feng Gu,Ze Chen,Ziyi Su,Heng Du,Duo Xu,Duo Xu,Weilin Xu
标识
DOI:10.1016/j.cej.2023.141769
摘要
Microbial production of biopolymers are non-standard materials in wearable resistive-strain sensors, despite established and desirable scale-up, rheological, ecological and economical properties. In this study, we report a biodegradable bacterial cellulose (BC) crack-based strain sensor prepared by in-situ fermentation with polypyrrole (PPy) and encapsulation with Ecoflex (EF) for human-interactive sensing. In-situ microbial fermentation method not only optimizes the distribution state of PPy but also constructs the three-dimensional conductive network, which contributing to the formation of crack-based sensing mechanism. The as-prepared BC/[email protected] strain sensor exhibits high sensitivity (gauge factor of 3.21–4.86), large strain ranges (up to 90% strain), ultralow strain detection limit (0.05%) and remarkable long-term stability without any distinct decline in sensitivity after a constant applied stretching of 90% for 1000 cycles. The strain sensor accurately detected a full range of body motions, including subtle vital signs like pulse, respiration and vocalizations, and was successfully integrated into textiles for human–computer interactions. Consequently, this study provides empirical value for the bio-fabrication and all-green construction design of wearable devices, as well as the development of human–computer interaction.
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