Experimental and Theoretical Insights on Interface Engineered FeS/rGO as Anode for Fast-Charging Lithium- and Sodium-Ion Batteries

被引:0
|
作者
Vishwanathan, Savithri [1 ,2 ]
Mohanta, Manish Kumar [3 ]
Jena, Puru [3 ]
Matte, H. S. S. Ramakrishna [1 ,2 ]
机构
[1] Ctr Nano & Soft Matter Sci CeNS, Energy Mat Lab, Bengaluru 562162, India
[2] Manipal Acad Higher Educ MAHE, Manipal 576104, India
[3] Virginia Commonwealth Univ, Dept Phys, Richmond, VA 23284 USA
关键词
anode; diffusion energy; interface engineering; lithium-ion batteries; sodium-ion batteries; HIGH-RATE PERFORMANCE; RAMAN-SPECTROSCOPY; COMPOSITE; SURFACE;
D O I
10.1002/smll.202410482
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Interface engineering facilitates the development of stable energy storage devices that can endure the severe changes encountered during operation. In the context of fast-charging anodes for lithium- and sodium-ion batteries (LIBs and SIBs), the interface needs to promote charge/ion transfer processes, enhance Li-/Na-ion storage capacity, and ensure good reversibility in order to function efficiently at high rates. Herein, a simple synthetic strategy is reported to design interfaces between transition metal sulfides and carbonaceous supports to generate high-performance fast-charging anodes. FeS/rGO nanostructures are synthesized via a simple solid-state annealing method by employing FeOOH/rGO, a metastable precursor, which is annealed at 600 degrees C in the presence of H2S gas. Interface engineering between FeS and rGO significantly improved the electrochemical performance, particularly demonstrated by stable capacities at high rates (625 mAh g(-)(1) at 5 A g(-)(1) for LIBs and 708 mAh g(-)(1) at 10 A g(-)(1) for SIBs). The high-rate charge storage is primarily governed by capacitive processes. Density functional theory (DFT) calculations attributed the enhanced performance of the FeS/rGO anode to a lower diffusion energy barrier for Li- and Na-ion diffusion at the interface along with the presence of a built-in electric field at the heterointerface.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Recent Advances on Heterojunction-Type Anode Materials for Lithium-/Sodium-Ion Batteries
    Fu, Hao
    Wen, Qing
    Li, Pei-Yao
    Wang, Zhen-yu
    He, Zhen-jiang
    Yan, Cheng
    Mao, Jing
    Dai, Kehua
    Zhang, Xia-hui
    Zheng, Jun-chao
    SMALL METHODS, 2022, 6 (12)
  • [22] Engineering Sodium-Ion Solvation Structure to Stabilize Sodium Anodes: Universal Strategy for Fast-Charging and Safer Sodium-Ion Batteries
    Zhou, Lin
    Cao, Zhen
    Zhang, Jiao
    Sun, Qujiang
    Wu, Yingqiang
    Wahyudi, Wandi
    Hwang, Jang-Yeon
    Wang, Limin
    Cavallo, Luigi
    Sun, Yang-Kook
    Alshareef, Husam N.
    Ming, Jun
    NANO LETTERS, 2020, 20 (05) : 3247 - 3254
  • [23] Air stable and fast-charging cathode material for all climate sodium-ion batteries
    Zhang, Hao
    Li, Qiubo
    Xu, Xinyue
    Yang, Hui
    Li, Guodong
    Liu, Zhaolu
    Liao, Mochou
    Xu, Jie
    Li, Xun-Lu
    Wang, Nan
    Zhang, Junxi
    Peng, Haoyang
    Cao, Yongjie
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2025, 678 : 20 - 29
  • [24] A 2D Metallic KCu4S3 Anode for Fast-Charging Sodium-Ion Batteries
    Lu, Chengyi
    Liu, Lei
    He, Song
    Li, Boxin
    Du, Zhuzhu
    Du, Hongfang
    Wang, Xuefei
    Zhang, Shaowei
    Ai, Wei
    ADVANCED ENERGY MATERIALS, 2024, 14 (27)
  • [25] Composite V3S4@rGO nanowires as a high-performance anode material for lithium-/sodium-ion batteries
    Hongshuai Zhang
    Yue Zhang
    Yanshuang Meng
    Mingjun Xiao
    Jian Hu
    Guixiang Zhao
    Shizhe Liu
    Fuliang Zhu
    Ionics, 2021, 27 : 5067 - 5077
  • [26] Bipyridine carboxylic acid as a high-performance anode material for lithium- and sodium-ion batteries
    Bo, Yiyang
    Wu, Wanbao
    Guo, Ruitian
    Cao, Miaomiao
    Liang, Yihong
    Wang, Mi
    Yu, Wen
    Zhang, Ling
    Zhang, Jiaheng
    ELECTROCHIMICA ACTA, 2022, 405
  • [27] Rational Structure Design of Fast-Charging NiSb Bimetal Nanosheet Anode for Lithium Ion Batteries
    Song, Gyujin
    Choi, Sungho
    Hwang, Chihyun
    Ryu, Jaegeon
    Song, Woo-Jin
    Song, Hyun-Kon
    Park, Soojin
    ENERGY & FUELS, 2020, 34 (08) : 10211 - 10217
  • [28] Challenges and Design Strategies for Conversion-Based Anode Materials for Lithium- and Sodium-Ion Batteries
    Kim, Hyunwoo
    Kim, Dong In
    Yoon, Won-Sub
    JOURNAL OF ELECTROCHEMICAL SCIENCE AND TECHNOLOGY, 2022, 13 (01) : 32 - 53
  • [29] SnxPy Nanoplate/Reduced Graphene Oxide Composites as Anode Materials for Lithium-/Sodium-Ion Batteries
    Kong, Zhen
    Yao, Xiaogang
    Shao, Yongliang
    Huang, Meiling
    Tu, Huayao
    Zhang, Kang
    Liang, Zhenyan
    Wu, Yongzhong
    Hao, Xiaopeng
    ACS APPLIED NANO MATERIALS, 2021, 4 (11) : 12335 - 12345
  • [30] Composite V3S4@rGO nanowires as a high-performance anode material for lithium-/sodium-ion batteries
    Zhang, Hongshuai
    Zhang, Yue
    Meng, Yanshuang
    Xiao, Mingjun
    Hu, Jian
    Zhao, Guixiang
    Liu, Shizhe
    Zhu, Fuliang
    IONICS, 2021, 27 (12) : 5067 - 5077