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低温自适应双网络MXene纳米复合水凝胶作为柔性可穿戴应变传感器

Low-Temperature Adaptive Dual-Network MXene Nanocomposite Hydrogel as Flexible Wearable Strain Sensors.

作者信息

Chen Kai, Lai Wenzhong, Xiao Wangchuan, Li Lumin, Huang Shijun, Xiao Xiufeng

机构信息

School of Resources and Chemical Engineering, Sanming University, Sanming 365004, China.

Fujian Provincial Key Laboratory of Advanced Materials Oriented Chemical Engineering, College of Chemistry and Materials Science, Fujian Normal University, Fuzhou 350007, China.

出版信息

Micromachines (Basel). 2023 Aug 6;14(8):1563. doi: 10.3390/mi14081563.

Abstract

Flexible electronic devices and conductive materials can be used as wearable sensors to detect human motions. However, the existing hydrogels generally have problems of weak tensile capacity, insufficient durability, and being easy to freeze at low temperatures, which greatly affect their application in the field of wearable devices. In this paper, glycerol was partially replaced by water as the solvent, agar was thermally dissolved to initiate acrylamide polymerization, and MXene was used as a conductive filler and initiator promoter to form the double network MXene-PAM/Agar organic hydrogel. The presence of MXene makes the hydrogel produce more conductive paths and enforces the hydrogel's higher conductivity (1.02 S·m). The mechanical properties of hydrogels were enhanced by the double network structure, and the hydrogel had high stretchability (1300%). In addition, the hydrogel-based wearable strain sensor exhibited good sensitivity over a wide strain range (GF = 2.99, 0-200% strain). The strain sensor based on MXene-PAM/Agar hydrogel was capable of real-time monitoring of human movement signals such as fingers, wrists, arms, etc. and could maintain good working conditions even in cold environments (-26 °C). Hence, we are of the opinion that delving into this hydrogel holds the potential to broaden the scope of utilizing conductive hydrogels as flexible and wearable strain sensors, especially in chilly environments.

摘要

柔性电子设备和导电材料可作为可穿戴传感器来检测人体运动。然而,现有的水凝胶通常存在拉伸能力弱、耐久性不足以及在低温下易冻结等问题,这极大地影响了它们在可穿戴设备领域的应用。在本文中,甘油被部分水替代作为溶剂,琼脂经热溶解引发丙烯酰胺聚合,并且使用MXene作为导电填料和引发剂促进剂来形成双网络MXene-PAM/琼脂有机水凝胶。MXene的存在使水凝胶产生更多的导电路径,并使水凝胶具有更高的电导率(1.02 S·m)。双网络结构增强了水凝胶的力学性能,该水凝胶具有高拉伸性(1300%)。此外,基于水凝胶的可穿戴应变传感器在较宽的应变范围内表现出良好的灵敏度(GF = 2.99,应变范围为0-200%)。基于MXene-PAM/琼脂水凝胶的应变传感器能够实时监测手指、手腕、手臂等人体运动信号,甚至在寒冷环境(-26°C)下也能保持良好的工作状态。因此,我们认为深入研究这种水凝胶有潜力拓宽导电水凝胶作为柔性可穿戴应变传感器的应用范围,尤其是在寒冷环境中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c9cb/10456329/58a68ce5edf5/micromachines-14-01563-g001.jpg

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