材料科学
标度系数
复合数
导电体
复合材料
聚氨酯
数码产品
炭黑
柔性电子器件
应变计
可穿戴技术
可穿戴计算机
纳米技术
计算机科学
制作
电气工程
工程类
病理
替代医学
天然橡胶
医学
嵌入式系统
作者
Zhixin Jia,Wenqiang Zhang,Maolin Liu,Fan Kang,Demin Jia
标识
DOI:10.1021/acsaelm.2c00982
摘要
Surface structure modulation provides a feasible strategy for designing highly sensitive electronics. Herein, a "casting–permeating–curing" method is proposed to fabricate high-performance composites using Ti3C2 MXene, modified carbon black (MCB), and waterborne polyurethane (WPU). The Ti3C2@MCB/WPU composite not only presents large stretchability (>400%) and robust strength (∼20.6 MPa) but also possesses superior conductivity, which results from the excellent interfacial interaction between Ti3C2@MCB and WPU. Most importantly, the interconnected conductive network with adjustable junctions constructed by hybrid conductive nanomaterials endows the composite with high sensitivity (gauge factor = 78.75). Therefore, the Ti3C2@MCB/WPU composite-based strain sensor features a wide sensing range (0–120°), low detection limit (∼0.1°), a short response time (∼142 ms), and excellent stability (∼1000 cycle fatigue tests). Benefiting from the above features, human motions, including pulse, phonation, and joint movement, are successfully and accurately detected by utilizing composite-based strain sensing. The findings demonstrate that the composite with versatilities exhibits wide potential in the fields of wearable electronics, smart robots, and human–machine interfaces.
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