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用于锌离子电容器和超级电容器的具有丰富氢键的多功能亲锌水凝胶电解质

Multifunctional Zincophilic Hydrogel Electrolyte with Abundant Hydrogen Bonds for Zinc-Ion Capacitors and Supercapacitors.

作者信息

Cui Shuzhen, Miao Wenxing, Wang Xiangbing, Sun Kanjun, Peng Hui, Ma Guofu

机构信息

Key Laboratory of Eco-functional Polymer Materials of the Ministry of Education, Key Laboratory of Eco-environmental Polymer Materials of Gansu Province, College of Chemistry and Chemical Engineering, Northwest Normal University, Lanzhou 730070, China.

College of Chemistry and Chemical Engineering, Lanzhou City University, Lanzhou 730070, China.

出版信息

ACS Nano. 2024 May 14;18(19):12355-12366. doi: 10.1021/acsnano.4c01304. Epub 2024 Apr 29.

Abstract

The new-generation flexible Zn-ion capacitors (ZICs) require multifunctionality and environmental adaptability for practical applications. This essentially means that hydrogel electrolytes are expected to possess superior mechanical properties, temperature resistance, and tunable interface properties to resist flexibility loss and performance degradation over a wide operating temperatures range. Herein, a multifunctional polyzwitterionic hydrogel electrolyte (PAM/LA/PSBMA) with wide operating temperatures, excellent tensile ability, high water retention, and self-adhesion is designed. Molecular dynamics simulations and experimental results show that polar functional groups (-COO, -SO, -C═O, and -NHCO-) in the hydrogel can form abundant hydrogen bonds with water molecules, which can destroy the original hydrogen bonds (HBs) network between the water molecules and have a low freezing point. It can also form coordination with Zn, so that the deposition of Zn electric field homogenization effectively alleviates the growth of Zn dendrites. On this basis, the constructed Zn//Zn cell can be stably cycled 290 h at 10 mA cm (1 mA h cm). The constructed ZICs and supercapacitor have a high specific capacitance, excellent energy density, good ionic conductivity, and long cycling stability. This study provides guidance on molecular design for the development of integrated multifunctional smart electronic devices that are environmentally adaptable, resistant to drying, and highly flexible.

摘要

新一代柔性锌离子电容器(ZICs)在实际应用中需要具备多功能性和环境适应性。这本质上意味着水凝胶电解质应具有优异的机械性能、耐温性和可调节的界面性能,以在较宽的工作温度范围内抵抗柔韧性损失和性能退化。在此,设计了一种具有宽工作温度、优异拉伸能力、高保水性和自粘性的多功能聚两性离子水凝胶电解质(PAM/LA/PSBMA)。分子动力学模拟和实验结果表明,水凝胶中的极性官能团(-COO、-SO、-C═O和-NHCO-)可与水分子形成丰富的氢键,这会破坏水分子之间原有的氢键(HBs)网络并具有低冰点。它还能与锌形成配位,从而使锌的沉积电场均匀化,有效缓解锌枝晶的生长。在此基础上,构建的Zn//Zn电池在10 mA cm(1 mA h cm)下可稳定循环290 h。构建的ZICs和超级电容器具有高比电容、优异的能量密度、良好的离子电导率和长循环稳定性。本研究为开发环境适应性强、抗干燥且高度柔性的集成多功能智能电子器件的分子设计提供了指导。

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