材料科学
压电
陶瓷
软机器人
纳米技术
可伸缩电子设备
纳米发生器
灵敏度(控制系统)
耐久性
压电传感器
复合材料
执行机构
计算机科学
电子工程
数码产品
电气工程
工程类
人工智能
作者
Qianqian Xu,Yong Tao,Zhenxing Wang,Hanmin Zeng,Junxiao Yang,Yuan Li,Senfeng Zhao,Peiyuan Tang,Jianxun Zhang,Mingyang Yan,Qingping Wang,Kechao Zhou,Dou Zhang,Hui Xie,Yan Zhang,Chris Bowen
标识
DOI:10.1002/adma.202311624
摘要
Abstract Stretchable self–powered sensors are of significant interest in next–generation wearable electronics. However, current strategies for creating stretchable piezoelectric sensors based on piezoelectric polymers or 0–3 piezoelectric composites face several challenges such as low piezoelectric activity, low sensitivity and poor durability. In this paper, we use a biomimetic soft–rigid hybrid strategy to construct a new form of highly flexible, high–performance, and stretchable piezoelectric sensor. Inspired by the hinged bivalve Cristaria plicata , hierarchical droplet–shaped ceramics were manufactured and used as rigid components, where computational models indicated that the unique arched curved surface and rounded corners of this bionic structure can effectively alleviate stress concentrations. To ensure electrical connectivity of the piezoelectric phase during stretching, a patterned liquid metal acted as a soft circuit and a silicone polymer with optimized wettability and stretchability served as a soft component that formed a strong mechanical interlock with the hierarchical ceramics. The novel sensor design exhibited excellent sensitivity and durability, where the open circuit voltage was shown to remain stable after 5,000 stretching cycles at 60% strain and 5,000 twisting cycles at 180°. To demonstrate its potential in healthcare applications, this new stretchable sensor was successfully used for wireless gesture recognition and the assessment of the progression of knee osteoarthritis. This article is protected by copyright. All rights reserved
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