纳米片
材料科学
纳米颗粒
灵敏度(控制系统)
纳米技术
耐久性
导电体
变形(气象学)
应变计
检出限
标度系数
拉伤
复合材料
电子工程
制作
医学
内科学
工程类
统计
替代医学
数学
病理
作者
Yina Yang,Liangjing Shi,Zherui Cao,Ranran Wang,Jing Sun
标识
DOI:10.1002/adfm.201807882
摘要
Abstract A high sensitivity and large stretchability are desirable for strain sensors in wearable applications. However, these two performance indicators are contradictory, since the former requires a conspicuous structural change under a tiny strain, whereas the latter demands morphological integrity upon a large deformation. Developing strain sensors with both a high sensitivity (gauge factor (GF) > 100) and a broad strain range (>50%) is a considerable challenge. Herein, a unique Ti 3 C 2 T x MXene nanoparticle–nanosheet hybrid network is constructed. The migration of nanoparticles leads to a large resistance variation while the wrapping of nanosheet bridges the detached nanoparticles to maintain the connectivity of the conductive pathways in a large strain region. The synergetic motion of nanoparticles and nanosheets endows the hybrid network with splendid electrical–mechanical performance, which is reflected in its high sensitivity (GF > 178.4) over the entire broad range (53%), the super low detection limit (0.025%), and a good cycling durability (over 5000 cycles). Such high performance endows the strain sensor with the capability for full‐range human motion detection.
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