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Na(VOPO)F 涂层增强铁氰化锰钠在钠离子电池中的电化学性能

Enhanced Electrochemical Performance of Sodium Manganese Ferrocyanide by Na(VOPO)F Coating for Sodium-Ion Batteries.

机构信息

Shanghai Electrochemical Energy Devices Research Center, Department of Chemistry and Chemical Engineering , Shanghai Jiao Tong University , Shanghai 200240 , China.

Center for Nanoscale Materials , Argonne National Laboratory , Argonne , Illinois 60439 , United States.

出版信息

ACS Appl Mater Interfaces. 2019 Oct 16;11(41):37685-37692. doi: 10.1021/acsami.9b12041. Epub 2019 Oct 1.

Abstract

Sodium manganese ferrocyanide NaMn[Fe(CN)] is an attractive cathode material for sodium-ion batteries. However, NaMn[Fe(CN)] prepared by simple coprecipitation of Mn and [Fe(CN)] usually shows poor cycling performance, which hinders its practical application. In this work, electrochemical performance of a NaMn[Fe(CN)] (PBM) sample prepared by the simple precipitation method was greatly improved by coating with Na(VOPO)F (NVOPF) via a solution precipitation method. The as-prepared PBM@NVOPF with a coating quantity of 2.0% molar ratio showed enhanced rate capability and superior cyclic stability. The discharge capacities of PBM@NVOPF were 101.5 mA h g (1 C) and 91.4 mA h g (10 C), with a capacity retention of 84.3% after 500 cycles at 1 C, 20 °C. It also exhibited excellent cyclic stability at elevated temperature with an initial capacity of 109.5 mA h g and a capacity retention of 78.8% after 200 cycles at 1 C, 55 °C. In comparison, uncoated PBM showed a discharge capacity of 105.7 mA h g (1 C) and 76.7 mA h g (10 C), with a capacity retention of only 42.0% after 500 cycles at 1 C, 20 °C. The high-temperature performance of bare PBM was very poor, and the capacity retention was only 35.7% after 40 cycles because of serious Mn/Fe dissolution which caused structural deterioration of PBM. NVOPF coating protected the PBM from suffering corrosion in the electrolyte, thus ensured the framework stability of PBM during long-term cycling and contributed to the excellent electrochemical performance.

摘要

亚铁氰化锰钠 NaMn[Fe(CN)] 是一种很有前途的钠离子电池阴极材料。然而,通过 Mn 和 [Fe(CN)] 的简单共沉淀制备的 NaMn[Fe(CN)] 通常表现出较差的循环性能,这阻碍了其实际应用。在这项工作中,通过溶液沉淀法在简单沉淀法制备的 NaMn[Fe(CN)](PBM)样品表面包覆 Na(VOPO)F(NVOPF),极大地提高了其电化学性能。所制备的具有 2.0%摩尔比包覆量的 PBM@NVOPF 具有增强的倍率性能和优异的循环稳定性。在 20°C 下以 1 C 进行 500 次循环后,PBM@NVOPF 的放电容量为 101.5 mA h g(1 C)和 91.4 mA h g(10 C),容量保持率为 84.3%。在高温下,它也表现出优异的循环稳定性,初始容量为 109.5 mA h g,在 55°C 下以 1 C 进行 200 次循环后,容量保持率为 78.8%。相比之下,未包覆的 PBM 在 20°C 下以 1 C 进行 500 次循环后,放电容量仅为 105.7 mA h g(1 C)和 76.7 mA h g(10 C),容量保持率仅为 42.0%。裸 PBM 的高温性能很差,在 40 次循环后容量保持率仅为 35.7%,这是因为 Mn/Fe 严重溶解导致 PBM 结构恶化。NVOPF 涂层保护 PBM 免受电解质腐蚀,从而确保 PBM 在长期循环过程中的框架稳定性,并有助于其优异的电化学性能。

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