Mu Guangyuan, He Wenting, He Jia, Muhammad Yaseen, Shi Zhongfeng, Zhang Bo, Zhou Liqin, Zhao Zhenxia, Zhao Zhongxing
Key Laboratory of New Low-carbon Green Chemical Technology, Education Department of Guangxi Zhuang Autonomous Region, School of Chemistry and Chemical Engineering, Guangxi University, Nanning 530004, China.
Institute of Chemical Sciences, University of Peshawar, 25120, KP, Pakistan.
Int J Biol Macromol. 2023 May 1;236:123936. doi: 10.1016/j.ijbiomac.2023.123936. Epub 2023 Mar 7.
Recently, ionic conductive hydrogels have attracted extensive attention in the field of flexible pressure sensors due to their mechanical flexibility and high conductivity. However, the trade-off between the high electrical and mechanical properties of ionic conductive hydrogels and the loss of mechanical and electrical properties of traditional high water content hydrogels at low temperature are still the main hurdles in this area. Herein, a rigid Ca-rich silkworm excrement cellulose (SECCa) extracted from silkworm breeding waste was prepared. SEC-Ca was combined with the flexible hydroxypropyl methylcellulose (HPMC) molecules through hydrogen bonding and double ionic bonds of Zn and Ca to obtain the physical network SEC@HPMC-(Zn/Ca). Then, the covalently cross-linked network of polyacrylamide (PAAM) and the physical network were cross-linked by hydrogen bonding to obtain the physical-chemical double cross-linked hydrogel (SEC@HPMC-(Zn/Ca)/PAAM). The hydrogel showed excellent compression properties (95 %, 4.08 MPa), high ionic conductivity (4.63 S/m at 25 °C) and excellent frost resistance (possessing ionic conductivity of 1.20 S/m at -70 °C). Notably, the hydrogel can monitor pressure changes in a wide temperature range (-60-25 °C) with high sensitivity, stability and durability. This newly fabricated hydrogel-based pressure sensors can be deemed of great prospects for large-scale application of pressure detection at ultra-low temperatures.
近年来,离子导电水凝胶因其机械柔韧性和高导电性在柔性压力传感器领域受到广泛关注。然而,离子导电水凝胶的高电学和力学性能与传统高含水量水凝胶在低温下力学和电学性能的损失之间的权衡仍是该领域的主要障碍。在此,制备了一种从蚕养殖废弃物中提取的富含刚性钙的蚕粪纤维素(SECCa)。SECCa通过锌和钙的氢键和双离子键与柔性羟丙基甲基纤维素(HPMC)分子结合,得到物理网络SEC@HPMC-(Zn/Ca)。然后,聚丙烯酰胺(PAAM)的共价交联网络与物理网络通过氢键交联,得到物理-化学双交联水凝胶(SEC@HPMC-(Zn/Ca)/PAAM)。该水凝胶表现出优异的压缩性能(95%,4.08MPa)、高离子电导率(25℃时为4.63S/m)和优异的抗冻性(-70℃时离子电导率为1.20S/m)。值得注意的是,该水凝胶能够在宽温度范围(-60-25℃)内高灵敏度、稳定且耐用地监测压力变化。这种新制备的基于水凝胶的压力传感器在超低温压力检测的大规模应用中具有广阔前景。