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利用壳聚糖纳米纤维协同构建一种高拉伸多功能液态金属基水凝胶,用于组装具有高灵敏度和宽工作范围的应变传感器。

Using chitosan nanofibers to synergistically construct a highly stretchable multi-functional liquid mental-based hydrogel for assembling strain sensor with high sensitivity and broad working range.

机构信息

State Key Laboratory of Biobased Materials and Green Papermaking, Qilu University of Technology, Shandong academy of science, Jinan 250353, China.

State Key Laboratory of Biobased Materials and Green Papermaking, Qilu University of Technology, Shandong academy of science, Jinan 250353, China.

出版信息

Int J Biol Macromol. 2024 Feb;259(Pt 1):129225. doi: 10.1016/j.ijbiomac.2024.129225. Epub 2024 Jan 4.

Abstract

Liquid metal (LM) microdroplets have garnered significant interest as conductive materials for initiating free radical polymerization in the development of conductive hydrogels suited for strain sensors. However, crafting multi-functional conductive hydrogels that boast both high stretchability and superior sensing capabilities remains as a challenge. In this study, we have successfully synthesized LM-based conductive hydrogels characterized by remarkable stretchability and sensing performance employing acrylic acid (AA) to evenly distribute chitosan nanofibers (CSFs) and to subsequently catalyze the free radical polymerization of AA. The resultant polymer network was crosslinked within situ polyacrylic acid (PAA), facilitated by Ga in conjunction with guar gum (GG)-stabilized Ga droplets. The strategic interplay between the rigid, and protonated CSFs and the pliable PAA matrix, coupled with the ionic crosslinking of Ga, endows the resulting GG-Ga-CSF-PAA hydrogel with high stretchability (3700 %), ultrafast self-healing, robust moldability, and strong adhesiveness. When deployed as a strain sensing material, this hydrogel exhibits a high gauge factor (38.8), a minimal detection threshold, enduring durability, and a broad operational range. This versatility enables the hydrogel-based strain sensor to monitor a wide spectrum of human motions. Remarkably, the hydrogel maintains its stretchability and sensing efficacy under extreme temperatures after a simple glycerol solution treatment.

摘要

液态金属 (LM) 微液滴作为引发自由基聚合的导电材料,在开发适用于应变传感器的导电水凝胶方面引起了极大的关注。然而,制造兼具高拉伸性和卓越传感性能的多功能导电水凝胶仍然是一个挑战。在这项研究中,我们成功地合成了基于 LM 的导电水凝胶,其特点是具有出色的拉伸性能和传感性能,使用丙烯酸 (AA) 均匀分布壳聚糖纳米纤维 (CSFs),并随后催化 AA 的自由基聚合。所得聚合物网络在原位交联聚丙稀酸 (PAA) 中,由 Ga 与瓜尔胶 (GG) 稳定的 Ga 液滴共同作用。刚性和质子化的 CSF 与柔韧的 PAA 基质之间的战略相互作用,加上 Ga 的离子交联,赋予了 GG-Ga-CSF-PAA 水凝胶高的拉伸性 (3700%)、超快的自修复能力、强大的可模塑性和强粘性。当用作应变传感材料时,这种水凝胶表现出高的应变系数 (38.8)、低的检测阈值、持久的耐用性和宽的工作范围。这种多功能性使基于水凝胶的应变传感器能够监测广泛的人体运动。值得注意的是,水凝胶在经过简单的甘油溶液处理后,在极端温度下仍保持其拉伸性和传感效果。

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