Lan Xuexia, Xiong Xingyu, Liu Jun, Yuan Bin, Hu Renzong, Zhu Min
School of Materials Science and Engineering, Guangdong Provincial Key Laboratory of Advanced Energy Storage Materials, South China University of Technology, Guangzhou, 510640, China.
Small. 2022 Jul;18(26):e2201110. doi: 10.1002/smll.202201110. Epub 2022 May 19.
Various anode materials have been widely studied to pursue higher performance for next generation lithium ion batteries (LIBs). Metal oxides hold the promise for high energy density of LIBs through conversion reactions. Among these, tin dioxide (SnO ) has been typically investigated after the reversible lithium storage of tin-based oxides is reported by Idota and co-workers in 1997. Numerous in/ex situ studies suggest that SnO stores Li through a conversion reaction and an alloying reaction. The difficulty of reversible conversion between Li O and SnO is a great obstacle limiting the utilization of SnO with high theoretical capacity of 1494 mA h g . Thus, enhancing the reversibility of the conversion reaction has become the research emphasis in recent years. Here, taking SnO as a typical representative, the recent progress is summarized and insight into the reverse conversion reaction is elaborated. Promoting Li O decomposition and maintaining high Sn/Li O interface density are two effective approaches, which also provide implications for designing other metal oxide anodes. In addition, some in/ex situ characterizations focusing on the conversion reaction are emphatically introduced. This review, from the viewpoint of material design and advanced characterizations, aims to provide a comprehensive understanding and shed light on the development of reversible metal oxide electrodes.
为了追求下一代锂离子电池(LIBs)的更高性能,人们对各种阳极材料进行了广泛研究。金属氧化物通过转化反应有望实现LIBs的高能量密度。其中,自1997年Idota及其同事报道了锡基氧化物的可逆锂存储之后,二氧化锡(SnO₂)就一直是典型的研究对象。大量的原位/非原位研究表明,SnO₂通过转化反应和合金化反应存储锂。Li₂O与SnO₂之间可逆转化的困难是一个巨大障碍,限制了具有1494 mA h g⁻¹高理论容量的SnO₂的利用。因此,提高转化反应的可逆性已成为近年来的研究重点。在此,以SnO₂作为典型代表,总结了近期的进展,并阐述了对逆向转化反应的见解。促进Li₂O分解和保持高Sn/Li₂O界面密度是两种有效的方法,这也为设计其他金属氧化物阳极提供了启示。此外,还着重介绍了一些关注转化反应的原位/非原位表征。本综述从材料设计和先进表征的角度出发,旨在全面理解并阐明可逆金属氧化物电极的发展。