Design of Electrodes and Electrolytes for Silicon-Based Anode Lithium-Ion Batteries

被引:1
作者
Chen, Xiaoyi [1 ]
Wang, Bin [2 ]
Ye, Yaowen [1 ]
Liang, Jin [1 ,3 ,4 ]
Kong, Jie [1 ]
机构
[1] Northwestern Polytech Univ, Sch Chem & Chem Engn, Shaanxi Key Lab Macromol Sci & Technol, MOE Key Lab Mat Phys & Chem Extraordinary Condit, Xian 710072, Peoples R China
[2] Minmet Explorat & Dev CO LTD, Beijing 100010, Peoples R China
[3] Northwestern Polytech Univ, Ningbo Inst, Key Lab Flexible Elect Zhejiang Provience, 218 Qingyi Rd, Ningbo 315103, Peoples R China
[4] Northwestern Polytech Univ Shenzhen, Res & Dev Inst, Sanhang Sci &Technol Buliding,45th,Gaoxin South 9t, Shenzhen 518063, Peoples R China
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
binders; electrolytes; lithium-ion batteries; silicon-based anodes; various structures; HIGH-PERFORMANCE ANODE; HIGH-CAPACITY ELECTRODE; WATER-SOLUBLE BINDER; AT-CARBON COMPOSITES; N-DOPED CARBON; IN-SITU; ELECTROCHEMICAL PERFORMANCE; STORAGE PERFORMANCE; SI/C COMPOSITE; POROUS SILICON;
D O I
10.1002/eem2.12838
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The development of lithium-ion batteries with high-energy densities is substantially hampered by the graphite anode's low theoretical capacity (372 mAh g-1). There is an urgent need to explore novel anode materials for lithium-ion batteries. Silicon (Si), the second-largest element outside of Earth, has an exceptionally high specific capacity (3579 mAh g-1), regarded as an excellent choice for the anode material in high-capacity lithium-ion batteries. However, it is low intrinsic conductivity and volume amplification during service status, prevented it from developing further. These difficulties can be successfully overcome by incorporating carbon into pure Si systems to form a composite anode and constructing a buffer structure. This review looks at the diffusion mechanism, various silicon-based anode material configurations (including sandwich, core-shell, yolk-shell, and other 3D mesh/porous structures), as well as the appropriate binders and electrolytes. Finally, a summary and viewpoints are offered on the characteristics and structural layout of various structures, metal/non-metal doping, and the compatibility and application of various binders and electrolytes for silicon-based anodes. This review aims to provide valuable insights into the research and development of silicon-based carbon anodes for high-performance lithium-ion batteries, as well as their integration with binders and electrolyte.
引用
收藏
页数:33
相关论文
共 234 条
[91]   Facile spray-drying/pyrolysis synthesis of core-shell structure graphite/silicon-porous carbon composite as a superior anode for Li-ion batteries [J].
Li, Min ;
Hou, Xianhua ;
Sha, Yujing ;
Wang, Jie ;
Hu, Shejun ;
Liu, Xiang ;
Shao, Zongping .
JOURNAL OF POWER SOURCES, 2014, 248 :721-728
[92]   Fabrication and lithium storage performance of sugar apple-shaped SiOx@C nanocomposite spheres [J].
Li, Mingqi ;
Zeng, Ying ;
Ren, Yurong ;
Zeng, Chunmei ;
Gu, Jingwei ;
Feng, Xiaofang ;
He, Hongyan .
JOURNAL OF POWER SOURCES, 2015, 288 :53-61
[93]   In-situ structural characterizations of electrochemical intercalation of graphite compounds [J].
Li, Na ;
Su, Dong .
CARBON ENERGY, 2019, 1 (02) :200-218
[94]   Recent progress on silicon-based anode materials for practical lithium-ion battery applications [J].
Li, Peng ;
Zhao, Guoqiang ;
Zheng, Xiaobo ;
Xu, Xun ;
Yao, Chenghao ;
Sun, Wenping ;
Dou, Shi Xue .
ENERGY STORAGE MATERIALS, 2018, 15 :422-446
[95]   General Strategy to Synthesize Uniform Mesoporous TiO2/Graphene/Mesoporous TiO2 Sandwich-Like Nanosheets for Highly Reversible Lithium Storage [J].
Li, Wei ;
Wang, Fei ;
Liu, Yupu ;
Wang, Jinxiu ;
Yang, Jianping ;
Zhang, Lijuan ;
Elzatahry, Ahmed A. ;
Al-Dahyan, Daifallah ;
Xia, Yongyao ;
Zhao, Dongyuan .
NANO LETTERS, 2015, 15 (03) :2186-2193
[96]   Research Progress of Silicon/Carbon Anode Materials for Lithium-Ion Batteries: Structure Design and Synthesis Method [J].
Li, Xinzhi ;
Zhang, Meng ;
Yuan, Shuxia ;
Lu, Chunxiang .
CHEMELECTROCHEM, 2020, 7 (21) :4289-4302
[97]   Construction of porous Si/Ag@C anode for lithium-ion battery by recycling volatile deposition waste derived from refining silicon [J].
Li, Yan ;
Chen, Guangyu ;
Liu, Wenxin ;
Zhang, Chentong ;
Huang, Liuqing ;
Luo, Xuetao .
WASTE MANAGEMENT, 2023, 156 :22-32
[98]   Coaxial electrospun Si/C-C core-shell composite nanofibers as binder-free anodes for lithium-ion batteries [J].
Li, Ying ;
Xu, Guanjie ;
Yao, Yingfang ;
Xue, Leigang ;
Yanilmaz, Meltem ;
Lee, Hun ;
Zhang, Xiangwu .
SOLID STATE IONICS, 2014, 258 :67-73
[99]   Core-shell structured C/SiO2 composites derived from Si-rich biomass as anode materials for lithium-ion batteries [J].
Li, Yixin ;
Liu, Li ;
Liu, Xiaoyang ;
Feng, Yi ;
Yu, Liyun ;
He, Zhongyu ;
Cui, Xinying ;
Zhang, Minzhe ;
Zhu, Yanchao ;
Wang, Xiaofeng .
IONICS, 2022, 28 (01) :151-160
[100]   A robust network binder via localized linking by small molecules for high-areal-capacity silicon anodes in lithium-ion batteries [J].
Li, Zeheng ;
Wan, Zhengwei ;
Zeng, Xianqing ;
Zhang, Shuomeng ;
Yan, Lijing ;
Ji, JiaPeng ;
Wang, Hongxun ;
Ma, Quanxin ;
Liu, Tiefeng ;
Lin, Zhan ;
Ling, Min ;
Liang, Chengdu .
NANO ENERGY, 2021, 79