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实现一种适用于环境自适应无枝晶水系锌锰电池的全方位水凝胶电解质。

Realizing an All-Round Hydrogel Electrolyte toward Environmentally Adaptive Dendrite-Free Aqueous Zn-MnO Batteries.

作者信息

Chen Minfeng, Chen Jizhang, Zhou Weijun, Han Xiang, Yao Yagang, Wong Ching-Ping

机构信息

School of Materials Science and Engineering, Nanjing Forestry University, Nanjing, 210037, China.

National Laboratory of Solid State Microstructures, College of Engineering and Applied Sciences, Jiangsu Key Laboratory of Artificial Functional Materials and Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing, 210093, China.

出版信息

Adv Mater. 2021 Mar;33(9):e2007559. doi: 10.1002/adma.202007559. Epub 2021 Jan 29.

Abstract

Flexible energy storage devices are at the forefront of next-generation power supplies, one of the most important components of which is the gel electrolyte. However, shortcomings exist, more or less, for all the currently developed hydrogel electrolytes. Herein, a facile and cost-effective method is developed to construct an all-round hydrogel electrolyte by using cotton as the raw material, tetraethyl orthosilicate as the crosslinker, and glycerol as the antifreezing agent. The obtained hydrogel electrolyte has high ionic conductivity, excellent mechanical properties (e.g., high tensile strength and elasticity), ultralow freezing point, good self-healing ability, high adhesion, and good heat-resistance ability. Remarkably, this hydrogel electrolyte can provide a record-breaking high ionic conductivity of 19.4 mS cm at -40 °C compared with previously reported aqueous electrolytes for zinc-ion batteries. In addition, this hydrogel electrolyte can significantly inhibit zinc dendritic growth and parasitic side reactions from -40 to 60 °C. With this hydrogel electrolyte, a flexible quasi-solid-state Zn-MnO battery is assembled, which shows remarkable energy densities from -40 to 60 °C. The battery also exhibits outstanding cycling durability and has high endurance under various harsh conditions. This work opens new opportunities for the development of hydrogel electrolytes.

摘要

柔性储能装置处于下一代电源的前沿,其中最重要的组件之一是凝胶电解质。然而,目前所有已开发的水凝胶电解质或多或少都存在缺点。在此,开发了一种简便且经济高效的方法,以棉花为原料、正硅酸四乙酯为交联剂、甘油为抗冻剂来构建一种全方位的水凝胶电解质。所获得的水凝胶电解质具有高离子电导率、优异的机械性能(如高拉伸强度和弹性)、超低冰点、良好的自愈能力、高粘附性和良好的耐热能力。值得注意的是,与先前报道的用于锌离子电池的水性电解质相比,这种水凝胶电解质在-40°C时可提供破纪录的19.4 mS cm的高离子电导率。此外,这种水凝胶电解质在-40至60°C范围内可显著抑制锌枝晶生长和寄生副反应。使用这种水凝胶电解质组装了一种柔性准固态锌-二氧化锰电池,该电池在-40至60°C范围内显示出显著的能量密度。该电池还表现出出色的循环耐久性,并且在各种苛刻条件下具有高耐受性。这项工作为水凝胶电解质的开发开辟了新的机遇。

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