Lithium–Oxygen Batteries and Related Systems: Potential, Status, and Future

电池(电) 锂(药物) 范围(计算机科学) 化学 储能 可再生能源 生化工程 纳米技术 计算机科学 工程类 电气工程 材料科学 功率(物理) 内分泌学 程序设计语言 物理 医学 量子力学
作者
Won‐Jin Kwak,. Rosy,Daniel Sharon,Chun Xia,Hun Kim,Lee Johnson,Peter G. Bruce,Linda F. Nazar,Yang‐Kook Sun,Aryeh A. Frimer,Malachi Noked,Stefan Freunberger,Doron Aurbach
出处
期刊:Chemical Reviews [American Chemical Society]
卷期号:120 (14): 6626-6683 被引量:577
标识
DOI:10.1021/acs.chemrev.9b00609
摘要

The goal of limiting global warming to 1.5 °C requires a drastic reduction in CO2 emissions across many sectors of the world economy. Batteries are vital to this endeavor, whether used in electric vehicles, to store renewable electricity, or in aviation. Present lithium-ion technologies are preparing the public for this inevitable change, but their maximum theoretical specific capacity presents a limitation. Their high cost is another concern for commercial viability. Metal–air batteries have the highest theoretical energy density of all possible secondary battery technologies and could yield step changes in energy storage, if their practical difficulties could be overcome. The scope of this review is to provide an objective, comprehensive, and authoritative assessment of the intensive work invested in nonaqueous rechargeable metal–air batteries over the past few years, which identified the key problems and guides directions to solve them. We focus primarily on the challenges and outlook for Li–O2 cells but include Na–O2, K–O2, and Mg–O2 cells for comparison. Our review highlights the interdisciplinary nature of this field that involves a combination of materials chemistry, electrochemistry, computation, microscopy, spectroscopy, and surface science. The mechanisms of O2 reduction and evolution are considered in the light of recent findings, along with developments in positive and negative electrodes, electrolytes, electrocatalysis on surfaces and in solution, and the degradative effect of singlet oxygen, which is typically formed in Li–O2 cells.
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