Wang Baoqi, Han Yu, Wang Xiao, Bahlawane Naoufal, Pan Hongge, Yan Mi, Jiang Yinzhu
State Key Laboratory of Silicon Materials, Key Laboratory of Novel Materials for Information Technology of Zhejiang Province and School of Materials Science and Engineering, Zhejiang University, Hangzhou 310027, China.
State Key Laboratory of Advanced Transmission Technology, Global Energy Interconnection Research Institute Co. Ltd, Beijing 102211, China.
iScience. 2018 May 25;3:110-133. doi: 10.1016/j.isci.2018.04.008. Epub 2018 Apr 18.
Non-lithium energy storage devices, especially sodium ion batteries, are drawing attention due to insufficient and uneven distribution of lithium resources. Prussian blue and its analogs (Prussian blue analogs [PBAs]), or hexacyanoferrates, are well-known since the 18th century and have been used for hydrogen storage, cancer therapy, biosensing, seawater desalination, and sewage treatment. Owing to their unique features, PBAs are receiving increasing interest in the field of energy storage, such as their high theoretical specific capacity, ease of synthesis, as well as low cost. In this review, a general summary and evaluation of the applications of PBAs for rechargeable batteries are given. After a brief review of the history of PBAs, their crystal structure, nomenclature, synthesis, and working principle in rechargeable batteries are discussed. Then, previous works classified based on the combination of insertion cations and transition metals are analyzed comprehensively. The review includes an outlook toward the further development of PBAs in electrochemical energy storage.
由于锂资源分布不足且不均衡,非锂储能装置,尤其是钠离子电池,正受到人们的关注。普鲁士蓝及其类似物(普鲁士蓝类似物[PBAs]),即六氰合铁酸盐,自18世纪以来就广为人知,并已用于储氢、癌症治疗、生物传感、海水淡化和污水处理。由于其独特的特性,PBAs在储能领域正受到越来越多的关注,比如其高理论比容量、易于合成以及低成本。在这篇综述中,对PBAs在可充电电池中的应用进行了总体总结和评估。在简要回顾PBAs的历史之后,讨论了它们的晶体结构、命名法、合成方法以及在可充电电池中的工作原理。然后,全面分析了以往基于嵌入阳离子和过渡金属组合进行分类的研究工作。该综述还展望了PBAs在电化学储能领域的进一步发展。