锂氧电池的进步:阴极和阳极材料综述

Jing Guo, Xue Meng, Qing Wang, Ya-hui Zhang, Shengxue Yan, Shaohua Luo
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引用次数: 0

摘要

随着现代社会的不断进步,不可再生能源(如天然气和石油)的枯竭加剧了环境和能源问题。开发绿色、环保的能源存储和转换系统势在必行。商用锂离子电池的能量密度已接近其理论极限,但仍难以满足快速增长的市场需求。锂氧电池因其极高的理论能量密度而备受研究人员的关注。然而,由于放电过程中氧还原反应(ORR)和充电过程中氧进化反应(OER)的动力学缓慢,锂氧电池面临着电解质稳定性差、循环寿命短、放电容量低和过电位高等挑战。本文阐明了锂氧电池的基本原理,分析了目前面临的主要问题,并总结了最近在空气阴极和阳极方面的研究进展。此外,文章还提出了锂-空气电池的未来发展方向和努力方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advancements in Lithium–Oxygen Batteries: A Comprehensive Review of Cathode and Anode Materials
As modern society continues to advance, the depletion of non-renewable energy sources (such as natural gas and petroleum) exacerbates environmental and energy issues. The development of green, environmentally friendly energy storage and conversion systems is imperative. The energy density of commercial lithium-ion batteries is approaching its theoretical limit, and even so, it struggles to meet the rapidly growing market demand. Lithium–oxygen batteries have garnered significant attention from researchers due to their exceptionally high theoretical energy density. However, challenges such as poor electrolyte stability, short cycle life, low discharge capacity, and high overpotential arise from the sluggish kinetics of the oxygen reduction reaction (ORR) during discharge and the oxygen evolution reaction (OER) during charging. This article elucidates the fundamental principles of lithium–oxygen batteries, analyzes the primary issues currently faced, and summarizes recent research advancements in air cathodes and anodes. Additionally, it proposes future directions and efforts for the development of lithium–air batteries.
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