High-Performance Microsized Si Anodes for Lithium-Ion Batteries: Insights into the Polymer Configuration Conversion Mechanism

被引:115
|
作者
Wang, Qiyu [1 ]
Zhu, Meng [1 ]
Chen, Guorong [1 ]
Dudko, Natalia [2 ]
Li, Yan [3 ]
Liu, Hongjiang [1 ]
Shi, Liyi [1 ]
Wu, Gang [4 ]
Zhang, Dengsong [1 ]
机构
[1] Shanghai Univ, Coll Sci, Dept Chem, Res Ctr Nano Sci & Technol, Shanghai 200444, Peoples R China
[2] BNTU, Interuniv R&D Mkt Ctr, Sci & Technol Pk, Minsk 220013, BELARUS
[3] Tongji Univ, Sch Mat Sci & Engn, Shanghai 201804, Peoples R China
[4] Univ Buffalo State Univ New York, Dept Chem & Biol Engn, Buffalo, NY 14260 USA
基金
中国国家自然科学基金;
关键词
Li; (+)-diffusion kinetics; lithium-ion batteries; poly(hexaazatrinaphthalene); silicon anodes; solid electrolyte interface; SOLID-ELECTROLYTE INTERPHASE; NANOWIRE ANODES; SILICON ANODES; COMPOSITE; WASTE; SEI; STABILITY; FILMS; COFS;
D O I
10.1002/adma.202109658
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Microsized silicon particles are desirable Si anodes because of their low price and abundant sources. However, it is challenging to achieve stable electrochemical performances using a traditional microsized silicon anode due to the poor electrical conductivity, serious volume expansion, and unstable solid electrolyte interface. Herein, a composite microsized Si anode is designed and synthesized by constructing a unique polymer, poly(hexaazatrinaphthalene) (PHATN), at a Si/C surface (PCSi). The Li+ transport mechanism of the PCSi is elucidated by using in situ characterization and theoretical simulation. During the lithiation of the PCSi anode, -C(sic)N- groups with high electron density in the PHATN first coordinate Li+ to form -C-N-Li bonds on both sides of the PHATN molecule plane. Consequently, the original benzene rings in the PHATN become active centers to accept lithium and form stable Li-rich PHATN coatings. PHATN molecules expand due to the change of molecular configuration during the consecutive lithiation process, which provides controllable space for the volume expansion of the Si particles. The PCSi composite anode exhibits a specific capacity of 1129.6 mAh g(-1) after 500 cycles at 1 A g(-1), and exhibits compelling rate performance, maintaining 417.9 mAh g(-1) at 16.5 A g(-1).
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Hollow Porous VOx/C Nanoscrolls as High-Performance Anodes for Lithium-Ion Batteries
    Jia, Bao-Rui
    Qin, Ming-Li
    Zhang, Zi-Li
    Li, Shu-Mei
    Zhang, De-Yin
    Wu, Hao-Yang
    Zhang, Lin
    Lu, Xin
    Qu, Xuan-Hui
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (39) : 25954 - 25961
  • [32] Controlled synthesis of high-performance β-FeOOH anodes for lithium-ion batteries and their size effects
    Yu, Linghui
    Wei, Chao
    Yan, Qingyu
    Xu, Zhichuan J.
    [J]. NANO ENERGY, 2015, 13 : 397 - 404
  • [33] Microsized Silicon/Carbon Composite Anodes through In Situ Polymerization of Phenolic Resin onto Silicon Microparticles for High-Performance Lithium-Ion Batteries
    Ma, Lei
    Fu, Xiaomeng
    Zhao, Fangfang
    Yu, Liming
    Su, Wenda
    Wei, Liangming
    Tang, Gen
    Wang, Yue
    Wu, Fang
    Guo, Xiang
    [J]. ACS APPLIED ENERGY MATERIALS, 2023, 6 (09) : 4989 - 4999
  • [34] New Insights into the High-Performance Black Phosphorus Anode for Lithium-Ion Batteries
    Li, Minsi
    Li, Weihan
    Hu, Yongfeng
    Yakovenko, Andrey A.
    Ren, Yang
    Luo, Jing
    Holden, William M.
    Shakouri, Mohsen
    Xiao, Qunfeng
    Gao, Xuejie
    Zhao, Feipeng
    Liang, Jianwen
    Feng, Renfei
    Li, Ruying
    Seidler, Gerald T.
    Brandys, Frank
    Divigalpitiya, Ranjith
    Sham, Tsun-Kong
    Sun, Xueliang
    [J]. ADVANCED MATERIALS, 2021, 33 (35)
  • [35] Natural sesbania gum as an efficient biopolymer binder for high-performance Si-based anodes in lithium-ion batteries
    Wang, Zechen
    Xu, Xintong
    Chen, Chunguang
    Huang, Tao
    Yu, Aishui
    [J]. JOURNAL OF POWER SOURCES, 2022, 539
  • [36] Sea Urchin-like Si@MnO2@rGO as Anodes for High-Performance Lithium-Ion Batteries
    Liu, Jiajun
    Wang, Meng
    Wang, Qi
    Zhao, Xishan
    Song, Yutong
    Zhao, Tianming
    Sun, Jing
    [J]. NANOMATERIALS, 2022, 12 (02)
  • [37] Hollow core-shell-structured Si-C composites as high-performance anodes for lithium-ion batteries
    Wang, Ting
    Wang, Fanghui
    Zhu, Hong
    [J]. MATERIALS LETTERS, 2015, 161 : 89 - 92
  • [38] Modified preparation of Si@C@TiO2 porous microspheres as anodes for high-performance lithium-ion batteries
    Luo, Jian
    Xiao, Peng
    Li, Yangjie
    Xiong, Jiangzhi
    Zhou, Peng
    Pang, Liang
    Xie, Xilei
    Li, Yang
    [J]. DALTON TRANSACTIONS, 2023, 52 (08) : 2463 - 2471
  • [39] A novel polymer-modified separator for high-performance lithium-ion batteries
    Xue, Caihong
    Jin, Dandan
    Nan, Hui
    Wei, Haomin
    Chen, Huiyuan
    Zhang, Chao
    Xu, Shiai
    [J]. JOURNAL OF POWER SOURCES, 2020, 449
  • [40] SELF-HEALING POLYMER BINDERS FOR THE Si AND Si/CARBON ANODES OF LITHIUM-ION BATTERIES
    Wu, Shuai
    Di, Fang
    Zheng, Jin-Gang
    Zhao, Hong-wei
    Zhang, Han
    Li, Li-xiang
    Geng, Xin
    Sun, Cheng-guo
    Yang, Hai-ming
    Zhou, Wei-min
    Ju, Dong-ying
    An, Bai-gang
    [J]. CARBON, 2023, 202 : 593 - 593