Enhanced electrochemical performance of MnFe@NiFe Prussian blue analogue benefited from the inhibition of Mn ions dissolution for sodium-ion batteries

普鲁士蓝 溶解 电化学 材料科学 四方晶系 阴极 单斜晶系 无机化学 离子 化学 核化学 电极 冶金 相(物质) 晶体结构 结晶学 有机化学 物理化学
作者
Fan Feng,Suli Chen,Shiqiang Zhao,Wenli Zhang,Yigao Miao,Haiying Che,Xiao-Zhen Liao,Zi‐Feng Ma
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:411: 128518-128518 被引量:86
标识
DOI:10.1016/j.cej.2021.128518
摘要

Sodium manganese hexacyanoferrate (PBM) is one of the most promising cathode materials for sodium-ion batteries due to its high theoretical capacity, high voltage, and low cost. However, its cycling performance is limited by serious Mn ions dissolution during Na+ insertion/extraction. In this work, a facile in situ ion-exchange strategy is developed to synthesize sodium manganese hexacyanoferrate coated by sodium nickel hexacyanoferrate ([email protected]). The as-prepared [email protected] showed superior cyclic stability and enhanced rate capability. [email protected] exhibited a high reversible capacity of 126.9 mAh g−1 (1 C), with a capacity retention of 74.3% after 800 cycles. ICP results proved that superior cyclic stability was attributed to the inhibition of Mn ions dissolution by PBN coating. Besides, [email protected] also exhibited enhanced rate capability, and it delivered a high capacity of 87.2 mAh g−1 at 10 C. Ex-situ XRD proved that the [email protected] undergoes a reversible structural change (monoclinic ↔ cubic/tetragonal) during the whole cycle. PBN coating inhibited the PBM from suffering serious Mn ions dissolution during Na+ insertion/extraction, thus ensured the framework stability of PBM during long-term cycling and contributed to the excellent electrochemical performance. The simple preparation of [email protected] makes it accessible for large-scale applications.
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