纳米复合材料
灵敏度(控制系统)
材料科学
弯曲
温度测量
热的
呼吸
热阻
光电子学
复合材料
电子工程
工程类
物理
植物
量子力学
气象学
生物
作者
Wenqing Xu,Yixin Lü,Ziang Zhang,Quan Zhou,W. J. Zhao,Runze Yang,Long Zhang,Limei Yang,Xin Gao,Ge‐Bo Pan
出处
期刊:IEEE Sensors Journal
[Institute of Electrical and Electronics Engineers]
日期:2024-01-01
卷期号:: 1-1
标识
DOI:10.1109/jsen.2024.3355399
摘要
Flexible thermal-resistance temperature sensors (RTSs) have caught tremendous attention due to their lightweight, good portability, fast response, and simple fabrication. However, it still remains an enormous challenge to construct a continuous and stable thermosensitive film with high temperature coefficient of resistance (TCR) compatible for flexible techniques. Here we present a new way that loads the semiconductor MOF Ni 3 (HHTP) 2 onto the two-dimensional (2D) conductive nanomaterial MXene via in-situ polymerisation in aqueous solution to fabricate the thermosensitive nanocomposite for the RTS. Due to the wide bandgap of the MOF (0.45 eV), the RTS exhibits a high thermal sensitivity (TCR) of -3.1 %·°C -1 . In addition, the RTS shows outstanding bending resistance over 1,000 bending cycles because the MOF is anchored to the MXene tightly through coordination interaction, compensating for the weak bonding between the MOF particles. Besides, benefiting from the high electrical conductivity of MXene, the resistance of the MOF/MXene nanocomposite was reduced. The high sensitivity, excellent durability, high accuracy (0.1°C), and fast response (1.2 s) enable the RTS to be applied in continuous body temperature and respiration rate monitoring. Therefore, we believe that the prepared RTS has promising application prospect in family medical systems and health surveillance.
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