An interconnected and scalable hollow Si-C nanospheres/graphite composite for high-performance lithium-ion batteries

被引:45
作者
Gao, Jiafeng [1 ,3 ]
Zuo, Songlin [1 ,3 ]
Liu, He [2 ]
Jiang, Qiwen [3 ]
Wang, Chenhao [1 ]
Yin, Huanhuan [1 ]
Wang, Ziqi [1 ]
Wang, Jie [1 ,3 ]
机构
[1] Nanjing Forestry Univ, Coll Chem Engn, Jiangsu Key Lab Biomass Based Green Fuels & Chem, Nanjing 210037, Peoples R China
[2] Jiangsu Key Lab Biomass Energy & Mat, Nanjing 210042, Peoples R China
[3] Nanjing Forestry Univ, Jiangsu Co Innovat Ctr Efficient Proc & Utilizat F, Nanjing 210037, Peoples R China
基金
中国国家自然科学基金;
关键词
Si -C nanospheres; Amorphous carbon; Graphite; Anode; Lithium ion batteries; ANODE MATERIAL; AMORPHOUS-CARBON; SILICON; GRAPHITE;
D O I
10.1016/j.jcis.2022.05.135
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Silicon (Si) anode is the most promising alternative for next generation lithium-ion batteries (LIBs) owing to large theoretical capacity, low working voltage and abundant natural resources. However, tremendous volume change of Si during the (de)lithiation processes causes repetitive formation of solid electrolyte interphase (SEI) layers, loss of electrical contact and electrodes pulverization, limiting its commercial application. Herein, we fabricate an interconnected hollow Si-C nanospheres/graphite composite via a facile and scalable approach. Notably, hollow Si-C nanospheres and graphite are homogeneously combined by using the surfactants as surface modifiers of graphite and introducing carbon dioxide (CO2) into magnesiothermic reduction reaction, resulting in the enhanced compatibility between hollow Si-C nanospheres and graphite, and the well-established electrical conductive network. The resultant Si-C nanospheres/graphite composite anode with carbon content of 59 wt% delivers a large reversible specific capacity of 662 mAh g(-1) and a high capacity retention of 65.7% at 0.5 A g(-1) after 200 cycles. Such excellent rate performance and superior cycling performance are attributed to high electrical conductivity and buffering effect of graphite, superior compatibility between hollow Si-C spheres and graphite, uniform distribution of both Si-C nanospheres with a unique hollow architecture and graphite flakes inside the composites and well-established interconnected electrical conductive carbon networks, which can effectively alleviate Si volume expansion and maintain good electrical contact during cycling. This strategy provides insights into designing Si-based anodes for practical LIBs. (C) 2022 Elsevier Inc. All rights reserved.
引用
收藏
页码:555 / 563
页数:9
相关论文
共 50 条
[1]   Effective Chemical Route to 2D Nanostructured Silicon Electrode Material: Phase Transition from Exfoliated Clay Nanosheet to Porous Si Nanoplate [J].
Adpakpang, Kanyaporn ;
Patil, Sharad B. ;
Oh, Seung Mi ;
Kang, Joo-Hee ;
Lacroix, Marc ;
Hwang, Seong-Ju .
ELECTROCHIMICA ACTA, 2016, 204 :60-68
[2]   Chemical reduction of three-dimensional silica micro-assemblies into microporous silicon replicas [J].
Bao, Zhihao ;
Weatherspoon, Michael R. ;
Shian, Samuel ;
Cai, Ye ;
Graham, Phillip D. ;
Allan, Shawn M. ;
Ahmad, Gul ;
Dickerson, Matthew B. ;
Church, Benjamin C. ;
Kang, Zhitao ;
Abernathy, Harry W., III ;
Summers, Christopher J. ;
Liu, Meilin ;
Sandhage, Kenneth H. .
NATURE, 2007, 446 (7132) :172-175
[3]   Nano-structured silicon and silicon based composites as anode materials for lithium ion batteries: recent progress and perspectives [J].
Bitew, Zelalem ;
Tesemma, Mulugeta ;
Beyene, Yonas ;
Amare, Meareg .
SUSTAINABLE ENERGY & FUELS, 2022, 6 (04) :1014-1050
[4]   Facile and Efficient Fabrication of Branched Si@C Anode with Superior Electrochemical Performance in LIBs [J].
Cao, Li ;
Huang, Ting ;
Cui, Mengya ;
Xu, Jiejie ;
Xiao, Rongshi .
SMALL, 2021, 17 (14)
[5]   Integration of Graphite and Silicon Anodes for the Commercialization of High-Energy Lithium-Ion Batteries [J].
Chae, Sujong ;
Choi, Seong-Hyeon ;
Kim, Namhyung ;
Sung, Jaekyung ;
Cho, Jaephil .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2020, 59 (01) :110-135
[6]   High-performance lithium battery anodes using silicon nanowires [J].
Chan, Candace K. ;
Peng, Hailin ;
Liu, Gao ;
McIlwrath, Kevin ;
Zhang, Xiao Feng ;
Huggins, Robert A. ;
Cui, Yi .
NATURE NANOTECHNOLOGY, 2008, 3 (01) :31-35
[7]   Milled flake graphite/plasma nano-silicon@carbon composite with void sandwich structure for high performance as lithium ion battery anode at high temperature [J].
Chen, Hedong ;
Hou, Xianhua ;
Chen, Fuming ;
Wang, Shaofeng ;
Wu, Bo ;
Ru, Qiang ;
Qin, Haiqing ;
Xia, Yingchun .
CARBON, 2018, 130 :433-440
[8]   Self-supporting dual-confined porous Si@c-ZIF@carbon nanofibers for high-performance lithium-ion batteries [J].
Chen, Jiale ;
Guo, Xingmei ;
Gao, Mingyue ;
Wang, Jing ;
Sun, Shangqing ;
Xue, Kai ;
Zhang, Shuya ;
Liu, Yuanjun ;
Zhang, Junhao .
CHEMICAL COMMUNICATIONS, 2021, 57 (81) :10580-10583
[9]   Self-templating synthesis of silicon nanorods from natural sepiolite for high-performance lithium-ion battery anodes [J].
Chen, Qingze ;
Zhu, Runliang ;
Liu, Shaohong ;
Wu, Dingcai ;
Fu, Haoyang ;
Zhu, Jianxi ;
He, Hongping .
JOURNAL OF MATERIALS CHEMISTRY A, 2018, 6 (15) :6356-6362
[10]   Highly elastic binders integrating polyrotaxanes for silicon microparticle anodes in lithium ion batteries [J].
Choi, Sunghun ;
Kwon, Tae-Woo ;
Coskun, Ali ;
Choi, Jang Wook .
SCIENCE, 2017, 357 (6348) :279-283