由磷酸化玉米秸秆纤维素和聚阿斯巴酰胺衍生物†组成的可持续、高离子电导率、半互穿的双网络离子凝胶膜

IF 2.5 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Bo Wang, Shuai Xie, Yan Li, Meiqing Fan, Xu Zeng, Hong Zhang, Yue Cao, Xin Zhang, Bo Ren and Xiao Dong Yang
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引用次数: 0

摘要

不可再生能源的大量消耗给环境带来了重大挑战。因此,创新可持续、安全和高效的能源储存和转换技术对于提高能源效率和促进环境可持续性至关重要。利用磷酸化玉米秸秆纤维素和聚天冬酰胺衍生物PolyAspAm(API/EA)制备了一种可持续可再生的半互穿双网络离子凝胶膜(AE-Cel)。离子液体1,3-二甲基咪唑甲基亚磷酸酯[DMIM][MeO(H)PO2]提高了离子凝胶的导电性,促进了酸诱导的秸秆纤维素溶解,从而克服了其固有的不溶性。戊二醛(GA)作为交联剂的掺入诱导羟基沿聚合物链的二次化学交联,最终形成半互穿双网络离子凝胶。作为固体电解质的离子凝胶薄膜表现出令人印象深刻的离子电导率(2.8 mS cm−1),在室温下具有优化的抗拉强度(529 kPa)。此外,作为柔性应变传感器,AE-Cel离子凝胶可以无缝连接到人的手指关节上,在关节弯曲时,它们熟练地传递精确而稳定的相对电阻变化信号。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A sustainable, high ionic conductivity, semi-interpenetrating double-network ionogel film composed of phosphorylated corn straw-derived cellulose and polyaspartamide derivatives†

A sustainable, high ionic conductivity, semi-interpenetrating double-network ionogel film composed of phosphorylated corn straw-derived cellulose and polyaspartamide derivatives†

The extensive consumption of non-renewable energy resources poses significant environmental challenges. Consequently, the innovation of sustainable, secure, and high-efficiency energy storage and conversion technologies is imperative for improving energy efficiency and advancing environmental sustainability. A sustainable and renewable semi-interpenetrating double network ionogel film (AE-Cel) is fabricated using phosphorylated corn straw-derived cellulose and a polyaspartamide derivative, PolyAspAm(API/EA). The ionic liquid 1,3-dimethylimidazolium methyl phosphite [DMIM][MeO(H)PO2] enhances the conductivity of the ionic gel and facilitates acid-induced dissolution of straw cellulose, thereby overcoming its inherent insolubility. The incorporation of glutaraldehyde (GA) as a crosslinking agent induces secondary chemical crosslinking of hydroxyl groups along the polymer chains, culminating in the development of a semi-interpenetrating double-network ionogel. The as-synthesized ionogel films as solid electrolytes demonstrate impressive ionic conductivity (2.8 mS cm−1), with optimized tensile strength (529 kPa) at room temperature. Moreover, as flexible strain sensors, the AE-Cel ionogels can be seamlessly attached to human finger joints, where they adeptly transmit precise and stable changes in relative resistance signals upon joint bending.

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来源期刊
New Journal of Chemistry
New Journal of Chemistry 化学-化学综合
CiteScore
5.30
自引率
6.10%
发文量
1832
审稿时长
2 months
期刊介绍: A journal for new directions in chemistry
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