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Pushing detectability and sensitivity for subtle force to new limits with shrinkable nanochannel structured aerogel
Engineering and TechnologyNature Communications

Pushing detectability and sensitivity for subtle force to new limits with shrinkable nanochannel structured aerogel

X. Shi, X. Fan, et al.

This innovative research introduces a soft polysiloxane crosslinked MXene aerogel featuring multilevel nanochannels, which detects pressure as low as 0.0063 Pa. With an extraordinary pressure sensitivity surpassing 1900 kPa⁻¹, this aerogel is set to revolutionize non-invasive monitoring and various applications, conducted by a team of experts including Xinlei Shi and Xiangqian Fan.... show more
Abstract
There is an urgent need for developing electromechanical sensor with both ultralow detection limits and ultrahigh sensitivity to promote the progress of intelligent technology. Here we propose a strategy for fabricating a soft polysiloxane crosslinked MXene aerogel with multilevel nanochannels inside its cellular walls for ultrasensitive pressure detection. The easily shrinkable nanochannels and optimized material synergism endow the piezoresistive aerogel with an ultralow Young's modulus (140 Pa), numerous variable conductive pathways, and mechanical robustness. This aerogel can detect extremely subtle pressure signals of 0.0063 Pa, deliver a high pressure sensitivity over 1900 kPa⁻¹, and exhibit extraordinarily sensing robustness. These sensing properties make the MXene aerogel feasible for monitoring ultra-weak force signals arising from a human's deep-lying internal jugular venous pulses in a non-invasive manner, detecting the dynamic impacts associated with the landing and take-off of a mosquito, and performing static pressure mapping of a hair.
Publisher
Nature Communications
Published On
Mar 02, 2022
Authors
Xinlei Shi, Xiangqian Fan, Yinbo Zhu, Yang Liu, Peiqi Wu, Renhui Jiang, Bao Wu, Heng-An Wu, He Zheng, Jianbo Wang, Xinyi Ji, Yongsheng Chen, Jiajie Liang
Tags
MXene aerogelpressure detectionsoft materialsnanochannelssensitivitynon-invasive monitoringconductivity
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