Practical application of graphite in lithium-ion batteries: Modification, composite, and sustainable recycling

被引:22
作者
Zhao, Hailan [1 ]
Zuo, Haibin [1 ]
Wang, Jingxiu [2 ]
Jiao, Shuqiang [1 ]
机构
[1] Univ Sci & Technol Beijing USTB, State Key Lab Adv Met, Beijing 100083, Peoples R China
[2] Univ Adelaide, Sch Chem Engn, Adelaide, SA 5005, Australia
关键词
Graphite anode; Modification strategies; Silicon/graphite composite electrode; High value conversion of waste graphite; ANODE MATERIAL; FLOTATION TECHNOLOGY; SURFACE MODIFICATION; ELECTRODE MATERIALS; NEGATIVE ELECTRODE; CARBON; RECOVERY; GRAPHENE; PERFORMANCE; SEPARATION;
D O I
10.1016/j.est.2024.113125
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Graphite has been a near-perfect and indisputable anode material in lithium-ion batteries, due to its high energy density, low embedded lithium potential, good stability, wide availability and cost-effectiveness. However, the inherent limitation in capacity of graphite anodes necessitates the exploration of efficient, controllable, safe, and environmentally friendly methods to enhance the performance for practical applications. This review highlights the historic evolution, current research status, and future development trend of graphite negative electrode materials. We summarized innovative modification strategies aiming at optimizing graphite anodes, focusing on augmenting multiplicity performance and energy density through diverse techniques and a comparative analysis of traditional modification measures. We proposed rational design of Silicon/Graphite composite electrode materials and efficient conversion pathways for waste graphite recycling into graphite negative electrode. Finally, we emphasized the challenges in technological implementation and practical applications, offering fresh perspectives for future battery material research towards waste graphite recycling. This review aims to inspire new ideas for practical applications and rational design of next-generation graphite-based electrodes, contributing to the advancement of lithium-ion battery technology and environmental sustainability.
引用
收藏
页数:21
相关论文
共 149 条
[1]   Structure-rate performance relationship in Si nanoparticles-carbon nanofiber composite as flexible anode for lithium-ion batteries [J].
Ahmadabadi, Vahide Ghanooni ;
Shirvanimoghaddam, Kamyar ;
Kerr, Robert ;
Showkath, Nibin ;
Naebe, Minoo .
ELECTROCHIMICA ACTA, 2020, 330
[2]  
Ahmed H., 2023, Synthesis and Characterization of Silicon-Carbon Composites as Anode Materials for Li-Ion Batteries
[3]   Surface modification of natural vein graphite for the anode application in Li-ion rechargeable batteries [J].
Amaraweera, T. H. N. G. ;
Balasooriya, N. W. B. ;
Wijayasinghe, H. W. M. A. C. ;
Attanayake, A. N. B. ;
Mellander, B. -E. ;
Dissanayake, M. A. K. L. .
IONICS, 2018, 24 (11) :3423-3429
[4]   Scalable synthesis of ant-nest-like bulk porous silicon for high-performance lithium-ion battery anodes [J].
An, Weili ;
Gao, Biao ;
Mei, Shixiong ;
Xiang, Ben ;
Fu, Jijiang ;
Wang, Lei ;
Zhang, Qiaobao ;
Chu, Paul K. ;
Huo, Kaifu .
NATURE COMMUNICATIONS, 2019, 10 (1)
[5]   Gelatin-pretreated carbon particles for potential use in lithium ion batteries [J].
Bele, M ;
Gaberscek, M ;
Dominko, R ;
Drofenik, J ;
Zupan, K ;
Komac, P ;
Kocevar, K ;
Musevic, I ;
Pejovnik, S .
CARBON, 2002, 40 (07) :1117-1122
[6]   Recycling of batteries:: a review of current processes and technologies [J].
Bernardes, AM ;
Espinosa, DCR ;
Tenório, JAS .
JOURNAL OF POWER SOURCES, 2004, 130 (1-2) :291-298
[7]   PolyHIPE foams from pristine graphene: Strong, porous, and electrically conductive materials templated by a 2D surfactant [J].
Brown, Elizabeth E. B. ;
Woltornist, Steven J. ;
Adamson, Douglas H. .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2020, 580 :700-708
[8]   Efficient reuse of anode scrap from lithium-ion batteries as cathode for pollutant degradation in electro-Fenton process: Role of different recovery processes [J].
Cao, Zhiqin ;
Zheng, Xiaohong ;
Cao, Hongbin ;
Zhao, He ;
Sun, Zhi ;
Guo, Zhuang ;
Wang, Kai ;
Zhou, Bin .
CHEMICAL ENGINEERING JOURNAL, 2018, 337 :256-264
[9]   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
[10]   Three-Dimensional Multilayered Interconnected Network of Conjugated Carbon Nanofibers Encapsulated Silicon/Graphene Oxide for Lithium Storage [J].
Chen, Wanzheng ;
Chen, Yangshen ;
Cheng, Yuanyuan ;
Zhang, Wenhui ;
Shao, Meng ;
Shen, Yu ;
Wu, Peng ;
Zheng, Bing ;
Li, Sheng ;
Zhang, Weina ;
Wu, Jiansheng .
JOURNAL OF INORGANIC AND ORGANOMETALLIC POLYMERS AND MATERIALS, 2020, 30 (03) :801-807