Ti-substituted tunnel-type Na0.44MnO2 oxide as a negative electrode for aqueous sodium-ion batteries

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作者
Yuesheng Wang
Jue Liu
Byungju Lee
Ruimin Qiao
Zhenzhong Yang
Shuyin Xu
Xiqian Yu
Lin Gu
Yong-Sheng Hu
Wanli Yang
Kisuk Kang
Hong Li
Xiao-Qing Yang
Liquan Chen
Xuejie Huang
机构
[1] Key Laboratory for Renewable Energy,Department of Chemistry
[2] Beijing Key Laboratory for New Energy Materials and Devices,Department of Materials Science and Engineering
[3] Laboratory of Advanced Materials and Electron Microscopy,undefined
[4] Beijing National Laboratory for Condensed Matter Physics,undefined
[5] Institute of Physics,undefined
[6] Chinese Academy of Sciences,undefined
[7] Brookhaven National Laboratory,undefined
[8] Seoul National University,undefined
[9] Advanced Light Source,undefined
[10] Lawrence Berkeley National Laboratory,undefined
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摘要
The aqueous sodium-ion battery system is a safe and low-cost solution for large-scale energy storage, because of the abundance of sodium and inexpensive aqueous electrolytes. Although several positive electrode materials, for example, Na0.44MnO2, were proposed, few negative electrode materials, for example, activated carbon and NaTi2(PO4)3, are available. Here we show that Ti-substituted Na0.44MnO2 (Na0.44[Mn1-xTix]O2) with tunnel structure can be used as a negative electrode material for aqueous sodium-ion batteries. This material exhibits superior cyclability even without the special treatment of oxygen removal from the aqueous solution. Atomic-scale characterizations based on spherical aberration-corrected electron microscopy and ab initio calculations are utilized to accurately identify the Ti substitution sites and sodium storage mechanism. Ti substitution tunes the charge ordering property and reaction pathway, significantly smoothing the discharge/charge profiles and lowering the storage voltage. Both the fundamental understanding and practical demonstrations suggest that Na0.44[Mn1-xTix]O2 is a promising negative electrode material for aqueous sodium-ion batteries.
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