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层状CaMnO·0.5H₂O作为水系锌离子电池的高性能阴极材料。

Layered Ca MnO ·0.5H O as a High Performance Cathode for Aqueous Zinc-Ion Battery.

作者信息

Sun Tianjiang, Nian Qingshun, Zheng Shibing, Shi Jinqiang, Tao Zhanliang

机构信息

Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), College of Chemistry, Nankai University, Tianjin, 300071, P. R. China.

出版信息

Small. 2020 Apr;16(17):e2000597. doi: 10.1002/smll.202000597. Epub 2020 Apr 6.

Abstract

Aqueous zinc-ion batteries are promising candidates for grid-scale energy storage because of their intrinsic safety, low cost, and high energy intensity. However, lack of suitable cathode materials with both excellent rate performance and cycling stability hinders further practical application of aqueous zinc-ion batteries. Here, a nanoflake-self-assembled nanorod structure of Ca MnO ·0.5H O as Zn-insertion cathode material is designed. The Ca MnO ·0.5H O exhibits a reversible capacity of 298 mAh g at 175 mA g and long-term cycling stability over 5000 cycles with no obvious capacity fading, which indicates that the per-insertion of Ca ions and water can significantly improve reversible insertion/extraction stability of Zn in Mn-based layered type material. Further, its charge storage mechanism, especially hydrogen ions, is elucidated. A comprehensive study suggests that the intercalation of hydrogen ions in the first discharge plat is controled by both pH value and type of anion of electrolyte. Further, it can stabilize the Ca MnO ·0.5H O cathode and facilitate the following insertion of Zn in 1 m ZnSO /0.1 m MnSO electrolyte. This work can enlighten and promote the development of high-performance rechargeable aqueous zinc-ion batteries.

摘要

水系锌离子电池因其本质安全性、低成本和高能量密度,是电网规模储能的有前景的候选者。然而,缺乏兼具优异倍率性能和循环稳定性的合适正极材料阻碍了水系锌离子电池的进一步实际应用。在此,设计了一种CaMnO·0.5H₂O的纳米片自组装纳米棒结构作为锌插入型正极材料。CaMnO·0.5H₂O在175 mA g⁻¹时表现出298 mAh g⁻¹的可逆容量,并在5000次循环中具有长期循环稳定性且无明显容量衰减,这表明Ca离子和水的插入可显著提高锌在锰基层状材料中的可逆插入/脱出稳定性。此外,阐明了其电荷存储机制,特别是氢离子的存储机制。一项综合研究表明,第一次放电平台中氢离子的嵌入受电解液的pH值和阴离子类型的控制。此外,它可以稳定CaMnO·0.5H₂O正极,并促进在1 m ZnSO₄/0.1 m MnSO₄电解液中后续锌的插入。这项工作可以启发和推动高性能可充电水系锌离子电池的发展。

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