材料科学
电池(电)
密度泛函理论
阴极
带隙
离子
纳米技术
光电子学
工程物理
电气工程
计算化学
化学
工程类
物理
量子力学
功率(物理)
有机化学
作者
Shiyu Wang,Shuyun Yao,Feike Zhang,Kang Ji,Yingjie Ji,Jingxian Li,Weijie Fu,Yuanming Liu,H. J. Yang,Ruilong Liu,Jiangzhou Xie,Zhiyu Yang,Yi‐Ming Yan
出处
期刊:Angewandte Chemie
[Wiley]
日期:2024-09-21
卷期号:64 (4): e202415997-e202415997
被引量:23
标识
DOI:10.1002/anie.202415997
摘要
Abstract The pressing demand for large‐scale energy storage solutions has propelled the development of advanced battery technologies, among which zinc‐ion batteries (ZIBs) are prominent due to their resource abundance, high capacity, and safety in aqueous environments. However, the use of manganese oxide cathodes in ZIBs is challenged by their poor electrical conductivity and structural stability, stemming from the intrinsic properties of MnO 2 and the destabilizing effects of ion intercalation. To overcome these limitations, our research delves into atomic‐level engineering, emphasizing quantum spin exchange interactions (QSEI). These essential for modifying electronic characteristics, can significantly influence material efficiency and functionality. We demonstrate through density functional theory (DFT) calculations that enhanced QSEI in manganese oxides broadens the O p band, narrows the band gap, and optimizes both proton adsorption and electron transport. Empirical evidence is provided through the synthesis of Ru−MnO 2 nanosheets, which display a marked increase in energy storage capacity, achieving 314.4 mAh g −1 at 0.2 A g −1 and maintaining high capacity after 2000 cycles. Our findings underscore the potential of QSEI to enhance the performance of TMO cathodes in ZIBs, pointing to new avenues for advancing battery technology
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