Liu Tao, Vivek J Padmanabhan, Zhao Evan Wenbo, Lei Jiang, Garcia-Araez Nuria, Grey Clare P
Shanghai Key Laboratory of Chemical Assessment and Sustainability, Department of Chemistry, Tongji University, Shanghai 200092, P. R. China.
Chemistry Department, University of Cambridge, Lensfield Road, Cambridge CB2 1EW, U.K.
Chem Rev. 2020 Jul 22;120(14):6558-6625. doi: 10.1021/acs.chemrev.9b00545. Epub 2020 Feb 24.
Nonaqueous lithium-air batteries have garnered considerable research interest over the past decade due to their extremely high theoretical energy densities and potentially low cost. Significant advances have been achieved both in the mechanistic understanding of the cell reactions and in the development of effective strategies to help realize a practical energy storage device. By drawing attention to reports published mainly within the past 8 years, this review provides an updated mechanistic picture of the lithium peroxide based cell reactions and highlights key remaining challenges, including those due to the parasitic processes occurring at the reaction product-electrolyte, product-cathode, electrolyte-cathode, and electrolyte-anode interfaces. We introduce the fundamental principles and critically evaluate the effectiveness of the different strategies that have been proposed to mitigate the various issues of this chemistry, which include the use of solid catalysts, redox mediators, solvating additives for oxygen reaction intermediates, gas separation membranes, etc. Recently established cell chemistries based on the superoxide, hydroxide, and oxide phases are also summarized and discussed.
在过去十年中,非水锂空气电池因其极高的理论能量密度和潜在的低成本而引起了广泛的研究兴趣。在电池反应的机理理解以及开发有助于实现实用储能装置的有效策略方面都取得了重大进展。通过关注主要在过去8年发表的报告,本综述提供了基于过氧化锂的电池反应的最新机理图景,并突出了仍然存在的关键挑战,包括那些由于在反应产物-电解质、产物-阴极、电解质-阴极和电解质-阳极界面发生的寄生过程所导致的挑战。我们介绍了基本原理,并批判性地评估了为缓解这种化学体系的各种问题而提出的不同策略的有效性,这些策略包括使用固体催化剂、氧化还原介质、用于氧反应中间体的溶剂化添加剂、气体分离膜等。最近建立的基于超氧化物、氢氧化物和氧化物相的电池化学体系也进行了总结和讨论。