Gong Decai, Wei Chenyang, Liang Zhongwang, Tang Yongbing
Functional Thin Films Research Center Shenzhen Institute of Advanced Technology Chinese Academy of Sciences Shenzhen 518055 China.
Nano Science and Technology Institute University of Science and Technology of China Suzhou 215123 China.
Small Sci. 2021 May 5;1(6):2100014. doi: 10.1002/smsc.202100014. eCollection 2021 Jun.
Sodium is abundant on Earth and has similar chemical properties to lithium, thus sodium-ion batteries (SIBs) have been considered as one of the most promising alternative energy storage systems to lithium-ion batteries (LIBs). Meanwhile, a new energy storage device called sodium dual-ion batteries (SDIBs) is attracting much attention due to its high voltage platform, low production cost, and environmental benignity coming from the feature of directly using graphite as the cathode. However, due to the large mass and ionic radius of sodium atoms, SIBs and SDIBs exhibit low energy density and inferior cycling life than LIBs. Over the past few years, tremendous efforts, especially in the area of anode materials, have been made to improve the electrochemical performance of SIBs and SDIBs. Reviewing and summarizing the previous studies will be helpful for future exploration and optimization. Herein, the recent progress on anode materials for SIBs and SDIBs is summarized according to the reaction mechanism. The structural design, reaction mechanism, and electrochemical performance of the anode materials are briefly discussed. In addition, the fundamental challenges, potential solutions, and perspectives in this field are also proposed. It is hoped that this Review may advance the development of anode materials for sodium storage.
钠在地球上储量丰富,且具有与锂相似的化学性质,因此钠离子电池(SIBs)被认为是锂离子电池(LIBs)最具前景的替代储能系统之一。与此同时,一种名为钠双离子电池(SDIBs)的新型储能装置因其高电压平台、低生产成本以及直接使用石墨作为阴极的特性所带来的环境友好性而备受关注。然而,由于钠原子的质量和离子半径较大,SIBs和SDIBs的能量密度较低,循环寿命也比LIBs差。在过去几年中,人们付出了巨大努力,特别是在负极材料领域,以提高SIBs和SDIBs的电化学性能。回顾和总结以往的研究将有助于未来的探索和优化。在此,根据反应机理总结了SIBs和SDIBs负极材料的最新进展。简要讨论了负极材料的结构设计、反应机理和电化学性能。此外,还提出了该领域的基本挑战、潜在解决方案和前景展望。希望本综述能够推动钠存储负极材料的发展。