材料科学
标度系数
拉伤
导电体
磁滞
灵敏度(控制系统)
光电子学
应变计
纳米技术
高分辨率
复合材料
制作
电子工程
遥感
地质学
医学
替代医学
物理
病理
量子力学
内科学
工程类
作者
Yang Liu,Zijun Xu,Xinyi Ji,Xin Xu,Fei Chen,Xiaosen Pan,Zhiqiang Fu,Yunzhi Chen,Zhengjian Zhang,Hongbin Liu,Bowen Cheng,Jiajie Liang
标识
DOI:10.1038/s41467-024-49787-9
摘要
Abstract High-sensitivity strain sensing elements with a wide strain range, fast response, high stability, and small sensing areas are desirable for constructing strain sensor arrays with high temporospatial resolution. However, current strain sensors rely on crack-based conductive materials having an inherent tradeoff between their sensing area and performance. Here, we present a molecular-level crack modulation strategy in which we use layer-by-layer assembly to introduce strong, dynamic, and reversible coordination bonds in an MXene and silver nanowire-matrixed conductive film. We use this approach to fabricate a crack-based stretchable strain sensor with a very small sensing area (0.25 mm 2 ). It also exhibits an ultrawide working strain range (0.001–37%), high sensitivity (gauge factor ~500 at 0.001% and >150,000 at 35%), fast response time, low hysteresis, and excellent long-term stability. Based on this high-performance sensing element and facile assembly process, a stretchable strain sensor array with a device density of 100 sensors per cm 2 is realized. We demonstrate the practical use of the high-density strain sensor array as a multichannel pulse sensing system for monitoring pulses in terms of their spatiotemporal resolution.
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