Bioinspired Hydrogen‐Bond Traps Enabling Ultrasensitive Temperature Sensing
Abstract
ABSTRACT The development of flexible temperature sensors is hindered by the intrinsically low thermal sensitivity of soft ionic conductors, which arises from averaged energy landscapes and competing transport mechanisms. Inspired by the gating mechanism of biological transient receptor potential (TRP) ion channels, we propose a hydrogen‐bond trap regulation strategy. By constructing localized hydrogen‐bond traps with heterogeneous energy distributions within a deep eutectic solvent (DES) gel network, continuous ion transport is transformed into a confined, thermally activated hopping process. This approach yields an ultrahigh temperature coefficient of resistance (TCR) of 178% °C −1 and a high B value of 7880 K. A miniature flexible probe (Ø1.0 mm × 1.0 mm) demonstrates practical potential in organ temperature monitoring and wireless respiratory tracking. The tailored hydrogen‐bond traps also effectively suppress multimodal crosstalk, enabling the fabrication of a decoupled trimodal sensing system that independently resolves proximity, pressure, and temperature signals for human–robot interaction. This work establishes a versatile materials strategy for achieving thermal perception in soft electronics and provides a general platform for tuning ion transport in polymer networks.
Article Details
Authors (14)
Zhimin Lu
Yuhang Song
iChem, State Key Laboratory of Physical Chemistry of Solid Surfaces, College of Chemistry and Chemical Engineering
Changming Wu
School of Materials Science and Engineering Tongji University Shanghai China
Liping Xu
Yunting Wang
School of Materials Science and Engineering Tongji University Shanghai China
Duixin Ma
School of Materials Science and Engineering Tongji University Shanghai China
Na Li
Yifei Chen
Wei Li
Bing Shen
Research Institute of Extraterrestrial Material at Peking University
Tianwen Bai
College of Biological Chemical Sciences and Engineering Jiaxing University Jiaxing China
Shuang Zheng
Advanced Separation & Conversion on Engineered Nanopore Dynamics Laboratory
Yang Xu
Jia Huang