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一种基于介孔NaV(PO) /C的用于可充电镁电池的有前景的高压阴极材料。

A Promising High-Voltage Cathode Material Based on Mesoporous Na V (PO ) /C for Rechargeable Magnesium Batteries.

作者信息

Zeng Jing, Yang Yang, Lai Shaobo, Huang Jianxing, Zhang Yiyong, Wang Jing, Zhao Jinbao

机构信息

State Key Laboratory of Physical Chemistry of Solid Surfaces, Collaborative Innovation Center of Chemistry for Energy Materials, State-Province Joint Engineering Laboratory of Power Source Technology for New Energy Vehicle, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen, Fujian, P. R. China.

出版信息

Chemistry. 2017 Nov 27;23(66):16898-16905. doi: 10.1002/chem.201704303. Epub 2017 Nov 7.

Abstract

The lack of suitable high-voltage cathode materials has hindered the development of rechargeable magnesium batteries (RMBs). Here, mesoporous Na V (PO ) /C (NVP/C) spheres have been synthesized through a facile spray-drying-annealing method, and their electrochemically desodiated phase NaV (PO ) /C (ED-NVP/C) has been investigated as an intercalation host for Mg ions. The obtained ED-NVP/C exhibits an average discharge voltage of around 2.5 V (vs. Mg /Mg), higher than those of most previously reported cathode materials. In addition, it can deliver an initial discharge capacity of 88.8 mA h g at 20 mA g , with good cycling stability. Ex situ X-ray diffraction (XRD) and X-ray photoelectron spectroscopy (XPS) results demonstrate that the electrochemical reaction is based on an intercalation mechanism and shows good reversibility. Galvanostatic intermittent titration technique (GITT) data have revealed that the intercalation process involves a two-phase transition. The reported ED-NVP/C cathode material with high working voltage offers promising potential for application in RMBs.

摘要

缺乏合适的高压阴极材料阻碍了可充电镁电池(RMBs)的发展。在此,通过简便的喷雾干燥-退火法合成了介孔NaV(PO₄)₂/C(NVP/C)球体,并对其电化学脱钠相NaV(PO₄)₂/C(ED-NVP/C)作为镁离子插层主体进行了研究。所获得的ED-NVP/C的平均放电电压约为2.5 V(相对于Mg²⁺/Mg),高于大多数先前报道的阴极材料。此外,在20 mA g⁻¹ 时它的初始放电容量可达88.8 mA h g⁻¹ ,具有良好的循环稳定性。非原位X射线衍射(XRD)和X射线光电子能谱(XPS)结果表明,电化学反应基于插层机制且具有良好的可逆性。恒电流间歇滴定技术(GITT)数据表明,插层过程涉及两相转变。所报道的具有高工作电压的ED-NVP/C阴极材料在可充电镁电池中具有广阔的应用前景。

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