Review on comprehending and enhancing the initial Coulombic efficiency of anode materials in lithium-ion/sodium-ion batteries

被引:400
作者
Li, Xin [1 ,2 ]
Sun, Xiaohong [1 ]
Hu, Xudong [1 ,2 ]
Fan, Fengru [2 ]
Cai, Shu [1 ]
Zheng, Chunming [4 ]
Stucky, Galen D. [2 ,3 ]
机构
[1] Tianjin Univ, Sch Mat Sci & Engn, Key Lab Adv Ceram & Machining Technol, Minist Educ, Tianjin 300072, Peoples R China
[2] Univ Calif Santa Barbara, Dept Chem & Biochem, Santa Barbara, CA 93106 USA
[3] Univ Calif Santa Barbara, Mat Dept, Santa Barbara, CA 93106 USA
[4] Tiangong Univ, Sch Chem & Chem Engn, State Key Lab Hollow Fiber Membrane Mat & Membran, Tianjin 300387, Peoples R China
基金
中国国家自然科学基金;
关键词
Lithium-ion battery; Sodium-ion battery; Initial Coulombic efficiency; Energy density; Anode materials; REDUCED GRAPHENE OXIDE; SOLID-ELECTROLYTE INTERPHASE; HIGH-PERFORMANCE ANODE; HIGH-CAPACITY; COMPOSITE ANODE; RECENT PROGRESS; ENERGY-STORAGE; NANOTUBE ANODES; POROUS CARBON; FULL-CELL;
D O I
10.1016/j.nanoen.2020.105143
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
Developing lithium-ion batteries (LIBs)/sodium-ion batteries (SIBs) with high energy density is vital to meet increasingly demanding requirements for energy storage. The initial Coulombic efficiency (ICE) of LIBs and SIBs anode materials, which is associated with the amount of redundant cathode materials in full cells, is a key parameter for the improvement of energy density in batteries. Generally, the low ICE of anode materials is compensated by additional loading of cathode materials in current commercial LIBs. Nevertheless, because the specific capacity of common lithium-metal oxide cathodes is lower than that of anodes, an excessive amount of cathode materials (10%-15% for graphite anode material) must be added to overcome the insufficient ICE of anode materials, which leads to an appreciable reduction of energy density. Specifically, the reduction is about 5%-20% of total available capacity in commercial graphite electrodes; and, it can even be as high as 15-50% for next-generation high-capacity anode materials (such as Si and Sn). Much work has been devoted to exploring anode materials with high ICE in LIBs/SIBs; however, to the best of our knowledge, there does not yet exist a comprehensive review. Herein, we provide an overview of ICE of anode materials both in LIBs and SIBS. In this review, we first discuss the current understanding of the association between ICE and energy density. This is followed by a detailed assessment of the reasons of the initial capacity loss (low ICE) for various types of anode materials. A summary is then given of the growing number of methods and related fundamental mechanisms being used to enhance ICE. We conclude with a perspective on the current challenges and promising research directions that might lead to further improvements of the ICE and the fabrication of higher-energy-density batteries.
引用
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页数:20
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共 130 条
[1]   The formation and stability of the solid electrolyte interface on the graphite anode [J].
Agubra, Victor A. ;
Fergus, Jeffrey W. .
JOURNAL OF POWER SOURCES, 2014, 268 :153-162
[2]   Theoretical versus Practical Energy: A Plea for More Transparency in the Energy Calculation of Different Rechargeable Battery Systems [J].
Betz, Johannes ;
Bieker, Georg ;
Meister, Paul ;
Placke, Tobias ;
Winter, Martin ;
Schmuch, Richard .
ADVANCED ENERGY MATERIALS, 2019, 9 (06)
[3]   Separated and intermixed phases of borophene as anode material for lithium-lon batteries [J].
Boroun, Mohammad ;
Abdolhosseini, Saeed ;
Pourfath, Mandi .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2019, 52 (24)
[4]   Ambient-Air Stable Lithiated Anode for Rechargeable Li-Ion Batteries with High Energy Density [J].
Cao, Zeyuan ;
Xu, Pengyu ;
Zhai, Haowei ;
Du, Sicen ;
Mandal, Jyotirmoy ;
Dontigny, Martin ;
Zaghib, Karim ;
Yang, Yuan .
NANO LETTERS, 2016, 16 (11) :7235-7240
[5]   Quartz (SiO2): a new energy storage anode material for Li-ion batteries [J].
Chang, Won-Seok ;
Park, Cheol-Min ;
Kim, Jae-Hun ;
Kim, Young-Ugk ;
Jeong, Goojin ;
Sohn, Hun-Joon .
ENERGY & ENVIRONMENTAL SCIENCE, 2012, 5 (05) :6895-6899
[6]   Boron-doped porous Si anode materials with high initial coulombic efficiency and long cycling stability [J].
Chen, Ming ;
Li, Bo ;
Liu, Xuejiao ;
Zhou, Ling ;
Yao, Lin ;
Zai, Jiantao ;
Qian, Xuefeng ;
Yu, Xibin .
JOURNAL OF MATERIALS CHEMISTRY A, 2018, 6 (07) :3022-3027
[7]   High-Performance Flexible Freestanding Anode with Hierarchical 3D Carbon-Networks/Fe7S8/Graphene for Applicable Sodium-Ion Batteries [J].
Chen, Weihua ;
Zhang, Xixue ;
Mi, Liwei ;
Liu, Chuntai ;
Zhang, Jianmin ;
Cui, Shizhong ;
Feng, Xiangming ;
Cao, Yuliang ;
Shen, Changyu .
ADVANCED MATERIALS, 2019, 31 (08)
[8]   High-rate FeS2/CNT neural network nanostructure composite anodes for stable, high-capacity sodium-ion batteries [J].
Chen, Yuanyuan ;
Hu, Xudong ;
Evanko, Brian ;
Sun, Xiaohong ;
Li, Xin ;
Hou, Tianyi ;
Cai, Shu ;
Zheng, Chunming ;
Hu, Wenbin ;
Stucky, Galen D. .
NANO ENERGY, 2018, 46 :117-127
[9]   Promise and reality of post-lithium-ion batteries with high energy densities [J].
Choi, Jang Wook ;
Aurbach, Doron .
NATURE REVIEWS MATERIALS, 2016, 1 (04)
[10]   ZnSb/C composite anode in additive free electrolyte for sodium ion batteries [J].
Choi, Jeong-Hee ;
Ha, Choong-Wan ;
Choi, Hae-Young ;
Shin, Heon-Cheol ;
Lee, Sang-Min .
MATERIALS LETTERS, 2015, 159 :349-352