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纤维状NaV(PO)F@N掺杂碳作为一种用于钠离子电池的具有增强循环稳定性的正极材料。

Fiber-Shape NaV(PO)F@N-Doped Carbon as a Cathode Material with Enhanced Cycling Stability for Na-Ion Batteries.

作者信息

Li Yunsha, Liang Xinghui, Zhong Guobin, Wang Chao, Wu Shijia, Xu Kaiqi, Yang Chenghao

机构信息

Electric Power Research Institute of Guangdong Power Grid Co., Ltd., Guangzhou, Guangdong 510080, P. R. China.

Guangzhou Key Laboratory for Surface Chemistry of Energy Materials, New Energy Research Institute, School of Environment and Energy, South China University of Technology, Guangzhou 510006, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2020 Jun 10;12(23):25920-25929. doi: 10.1021/acsami.0c05490. Epub 2020 May 27.

Abstract

To overcome intrinsic low electronic conductance, delicately designed fiber-shape NaV(PO)F@N-doped carbon composites (NVPF@C) have been prepared for boosting Na-storage performance. This distinctive interlinked three-dimensional network structure can effectively facilitate electron/Na-ion transportation by decreasing the NVPF particle size to shorten the ionic diffusion paths and introducing a conducting N-doping carbon scaffold to improve electronic conductivity. Benefiting from the favorable structural design and fascinating reaction kinetics, the modified NVPF@C material demonstrates superior sodium-storage performance with 109.5 mAh g high reversible capacity at a moderate current of 0.1 C, excellent rate tolerance of 78.9 mAh g at a high rate of 30 C, and gratifying long-term cyclability (87.8% capacity retention after 1000 cycles at 20 C; 83.4% capacity retention after 1500 round trips at a ultrahigh rate of 50 C). The fascinating electrochemical performance remains stable when NVPF@C was examined as the cathode material for a full cell, suggesting the fiber-shape NVPF@C as one of the most promising applicable materials for sodium-ion batteries. Moreover, the approach of the three-dimensional conductive network by electrospinning is proposed as a strategy of efficiency and promising prospect to enhance the electrochemical property of other materials for sodium-ion batteries.

摘要

为了克服固有的低电子电导率,人们制备了精心设计的纤维状NaV(PO)F@N掺杂碳复合材料(NVPF@C),以提高钠存储性能。这种独特的相互连接的三维网络结构可以通过减小NVPF粒径以缩短离子扩散路径,并引入导电的N掺杂碳支架来提高电子电导率,从而有效地促进电子/钠离子传输。受益于良好的结构设计和出色的反应动力学,改性后的NVPF@C材料展现出优异的钠存储性能,在0.1 C的适中电流下具有109.5 mAh g的高可逆容量,在30 C的高电流下具有78.9 mAh g的出色倍率耐受性,以及令人满意的长期循环稳定性(在20 C下1000次循环后容量保持率为87.8%;在50 C的超高电流下1500次循环后容量保持率为83.4%)。当将NVPF@C作为全电池的正极材料进行测试时,其迷人的电化学性能保持稳定,这表明纤维状NVPF@C是钠离子电池最有前景的适用材料之一。此外,通过静电纺丝构建三维导电网络的方法被提出,作为一种提高钠离子电池其他材料电化学性能的高效且前景广阔的策略。

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