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二元硫化铁作为锂/钠离子电池的低成本高性能阳极材料

Binary Iron Sulfide as a Low-Cost and High-Performance Anode for Lithium-/Sodium-Ion Batteries.

作者信息

Tang Qiming, Jiang Qin, Wu Tao, Wu Tianhao, Ding Zhiyu, Wu Junwei, Yu Haijun, Huang Kevin

机构信息

Department of Materials Science and Engineering, Harbin Institute of Technology (Shenzhen), Shenzhen 518055, P. R. China.

Department of Mechanical Engineering, University of South Carolina, Columbia, South Carolina 29208, United States.

出版信息

ACS Appl Mater Interfaces. 2020 Nov 25;12(47):52888-52898. doi: 10.1021/acsami.0c17728. Epub 2020 Nov 16.

Abstract

Iron-based sulfides have been deemed as an appealing anode material for lithium-ion batteries (LIBs) and sodium-ion batteries (SIBs) for their high theoretical capacity and low cost. However, their practical application is limited by drastic volume expansion during cycling and low-intrinsic electronic conductivity. In this work, we report a FeS/FeS-rGO composite synthesized via a facile solvothermal method as an LIB/SIB anode. The FeS/FeS-rGO anode exhibits an excellent Li-storage capacity of 514 mAh g at 2.0 A g after 3000 cycles and a Na-storage capacity of 650 mAh g at 0.2 A g after 250 cycles, respectively. The rGO matrix is deemed responsible for providing good electron conduction and alleviating volume expansion during cycling. The electrokinetic analysis confirms a large portion of intercalational pseudocapacitance as a major contribution to the superior rate performance. In situ X-ray diffraction further reveals details of a combined intercalational and conversional Li-ion storage mechanisms in this Fe-sulfide-based anode. Finally, density functional theory calculations suggest that there exists a synergistic effect at the heterointerface between FeS and FeS to promote electrokinetics.

摘要

铁基硫化物因其高理论容量和低成本,被认为是锂离子电池(LIBs)和钠离子电池(SIBs)颇具吸引力的负极材料。然而,其实际应用受到循环过程中剧烈的体积膨胀和低本征电子电导率的限制。在这项工作中,我们报道了一种通过简便的溶剂热法合成的FeS/FeS-rGO复合材料作为LIB/SIB负极。FeS/FeS-rGO负极在3000次循环后,在2.0 A g的电流密度下表现出514 mAh g的优异锂存储容量,在250次循环后,在0.2 A g的电流密度下表现出650 mAh g的钠存储容量。rGO基体被认为有助于提供良好的电子传导并减轻循环过程中的体积膨胀。动电分析证实,大部分插层赝电容是优异倍率性能的主要贡献因素。原位X射线衍射进一步揭示了这种铁基硫化物负极中插层和转化相结合的锂离子存储机制的细节。最后,密度泛函理论计算表明,FeS和FeS之间的异质界面存在协同效应,可促进动电过程。

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