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为可逆镁金属阳极定制传统醚基电解质中的配位

Tailoring Coordination in Conventional Ether-Based Electrolytes for Reversible Magnesium-Metal Anodes.

作者信息

Zhao Wanyu, Pan Zhenghui, Zhang Yijie, Liu Yuan, Dou Huanglin, Shi Yayun, Zuo Zhijun, Zhang Bowen, Chen Jianping, Zhao Xiaoli, Yang Xiaowei

机构信息

School of Materials Science and Engineering, Tongji University, Shanghai, 201804, P. R. China.

College of Material Science and Engineering, Key Laboratory of Coal Science and Technology, Taiyuan University of Technology, Taiyuan, 030024, P. R. China.

出版信息

Angew Chem Int Ed Engl. 2022 Jul 25;61(30):e202205187. doi: 10.1002/anie.202205187. Epub 2022 Jun 8.

Abstract

Rechargeable magnesium (Mg) batteries based on conventional electrolytes are seriously plagued by the formation of the ion-blocking passivation layer on the Mg metal anode. By tracking the Mg solvation sheath, this work links the passivation components to the Mg -solvents (1,2-dimethoxyethane, DME) coordination and the consequent thermodynamically unstable DME molecules. On this basis, we propose a methodology to tailor solvation coordination by introducing the additive solvent with extreme electron richness. Oxygen atoms in phosphorus-oxygen groups compete with that in carbon-oxygen groups of DME for the coordination with Mg , thus softening the solvation sheath deformation. Meanwhile, the organophosphorus molecules in the rearranged solvation sheath decompose on the Mg surface, increasing the Mg transport and electrical resistance by three and one orders of magnitude, respectively. Consequently, the symmetric cells exhibit superior cycling performance of over 600 cycles with low polarization.

摘要

基于传统电解质的可充电镁(Mg)电池严重受限于镁金属阳极上离子阻挡钝化层的形成。通过追踪镁溶剂化鞘层,这项工作将钝化成分与镁 - 溶剂(1,2 - 二甲氧基乙烷,DME)配位以及随之而来的热力学不稳定的DME分子联系起来。在此基础上,我们提出了一种通过引入具有极高电子丰富度的添加剂溶剂来调整溶剂化配位的方法。磷氧基团中的氧原子与DME中碳氧基团的氧原子竞争与镁的配位,从而软化溶剂化鞘层的变形。同时,重新排列的溶剂化鞘层中的有机磷分子在镁表面分解,分别使镁传输和电阻增加三个和一个数量级。因此,对称电池表现出超过600次循环的优异循环性能且极化较低。

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