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一种基于交联聚四氢呋喃-硼酸的聚合物电解质,实现了宽工作温度范围的可充电镁电池。

A Crosslinked Polytetrahydrofuran-Borate-Based Polymer Electrolyte Enabling Wide-Working-Temperature-Range Rechargeable Magnesium Batteries.

机构信息

Qingdao Industrial Energy Storage Research Institute, Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, No. 189 Songling Road, Qingdao, 266101, China.

Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, No. 19A Yuquan Road, Beijing, 100049, China.

出版信息

Adv Mater. 2019 Mar;31(11):e1805930. doi: 10.1002/adma.201805930. Epub 2019 Jan 23.

Abstract

A polymer-based magnesium (Mg) electrolyte is vital for boosting the development of high-safety and flexible Mg batteries by virtue of its enormous advantages, such as significantly improved safety, potentially high energy density, ease of fabrication, and structural flexibility. Herein, a novel polytetrahydrofuran-borate-based gel polymer electrolyte coupling with glass fiber is synthesized via an in situ crosslinking reaction of magnesium borohydride [Mg(BH ) ] and hydroxyl-terminated polytetrahydrofuran. This gel polymer electrolyte exhibits reversible Mg plating/stripping performance, high Mg-ion conductivity, and remarkable Mg-ion transfer number. The Mo S /Mg batteries assembled with this gel polymer electrolyte not only work well at wide temperature range (-20 to 60 °C) but also display unprecedented improvements in safety issues without suffering from internal short-circuit failure even after a cutting test. This in situ crosslinking approach toward exploiting the Mg-polymer electrolyte provides a promising strategy for achieving large-scale application of Mg-metal batteries.

摘要

一种基于聚合物的镁(Mg)电解质对于推动高安全性和柔性 Mg 电池的发展至关重要,因为它具有许多优势,例如显著提高了安全性、潜在的高能量密度、易于制造和结构灵活性。在此,通过镁硼氢化[Mg(BH )]和端羟基聚四氢呋喃的原位交联反应,合成了一种新型聚四氢呋喃-硼酸酯基凝胶聚合物电解质,并用玻璃纤维进行了复合。该凝胶聚合物电解质具有可逆的 Mg 电镀/剥离性能、高 Mg 离子电导率和显著的 Mg 离子迁移数。由这种凝胶聚合物电解质组装的 MoS /Mg 电池不仅在很宽的温度范围内(-20 至 60°C)表现良好,而且在安全性方面也有了前所未有的提高,即使在切割测试后也不会发生内部短路故障。这种用于开发 Mg-聚合物电解质的原位交联方法为实现大规模应用 Mg 金属电池提供了一种很有前途的策略。

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