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第一性原理计算锂硫电池电解质的氧化电位及其随环境变化的变化。

First-principles calculations of oxidation potentials of electrolytes in lithium-sulfur batteries and their variations with changes in environment.

机构信息

Department of Chemical Engineering, Texas A&M University, College Station, TX 77843, USA.

出版信息

Phys Chem Chem Phys. 2018 Jul 11;20(27):18811-18827. doi: 10.1039/c8cp02912a.

Abstract

Oxidation potentials of electrolyte molecules in Li-sulfur (Li/S) batteries and their variations in various solvent environments are investigated using first-principles calculations in order to understand oxidative decomposition reactions of electrolytes for cathode passivation. Electrolyte solvents, Li salts, and various additives in Li/S batteries along with some Li-ion battery additives are studied. Oxidation potentials of isolated electrolyte molecules are found to be out of the operating range of typical Li/S batteries. The complexation of electrolyte molecules with Li+, salt anion, salt, S8, and pyrene alters oxidation potentials compared to those of the isolated systems. The salt anion lowers oxidation potentials of electrolyte molecules by at least 4.7% while the complexes with Li+ have higher oxidation potentials than the isolated molecules by at least 10.4%. S8 and pyrene, used as model compounds for sulfur and sulfur/carbon composite cathode materials, also affect oxidation potentials of electrolyte molecules, but their influence is negligible and the oxidation trends differ from those of the Li+ and salt anion. Although complexations change the oxidation potentials of electrolyte molecules, they are still higher than the operating voltage range of Li/S batteries, which indicates that oxidation of the studied electrolytes in Li/S batteries is not expected under ambient conditions.

摘要

使用第一性原理计算研究了锂硫(Li/S)电池中电解质分子的氧化电位及其在各种溶剂环境中的变化,以了解电解质对阴极钝化的氧化分解反应。研究了 Li/S 电池中的电解质溶剂、Li 盐和各种添加剂以及一些锂离子电池添加剂。孤立电解质分子的氧化电位超出了典型 Li/S 电池的工作范围。与孤立体系相比,电解质分子与 Li+、盐阴离子、盐、S8 和芘的络合会改变氧化电位。盐阴离子使电解质分子的氧化电位至少降低 4.7%,而与 Li+形成的配合物的氧化电位比孤立分子至少高 10.4%。S8 和芘用作硫和硫/碳复合阴极材料的模型化合物,也会影响电解质分子的氧化电位,但它们的影响可以忽略不计,氧化趋势与 Li+和盐阴离子不同。尽管络合会改变电解质分子的氧化电位,但它们仍然高于 Li/S 电池的工作电压范围,这表明在环境条件下预计不会发生研究电解质在 Li/S 电池中的氧化。

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