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Published on: June 1, 2012
High-Sensitivity Wearable Sensor Based On a MXene Nanochannel Self-Adhesive Hydrogel
Tao Gong1, Zo Ngyang Li1, Huanyi Liang1
1College of Chemistry and Chemical Engineering, University of South China, Hengyang 421001, China.
Abstract:
To address the shortcomings of traditional filler-based wearable hydrogels, a new type of nanochannel hydrogel sensor is fabricated in this work through a combination of the unique structure of electrospun fiber textile and the properties of a double network hydrogel. Unlike the traditional Ti3C2T MXene-based hydrogels, the continuously distributed Ti3C2T MXene in the nanochannels of the hydrogel forms a tightly interconnected structure similar to the neuron network. As a result, they have more free space to flip and perform micromovements, which allows one to significantly increase the electrical conductivity and sensitivity of the hydrogel. According to the findings, the Ti3C2T MXene nanochannel hydrogel has excellent mechanical properties as well as self-adhesion and antifreezing characteristics. The hydrogel sensor successfully detects different human motions and physiological signals (e.g., low pulse signals) with high stability and sensitivity. Therefore, the proposed Ti3C2T MXene-based hydrogel with a unique structure and properties is very promising in the field of flexible wearable devices.

