Revealing the Rate-Limiting Li-Ion Diffusion Pathway in Ultrathick Electrodes for Li-Ion Batteries

被引:163
|
作者
Gao, Han [1 ]
Wu, Qiang [2 ]
Hu, Yixin [3 ]
Zheng, Jim P. [2 ]
Amine, Khalil [1 ,4 ]
Chen, Zonghai [1 ]
机构
[1] Argonne Natl Lab, Chem Sci & Engn Div, 9700 S Cass Ave, Argonne, IL 60439 USA
[2] Florida State Univ, Dept Elect & Comp Engn, Florida A&M Univ, Coll Engn, Tallahassee, FL 32310 USA
[3] Univ N Carolina, Dept Chem, Chapel Hill, NC 27514 USA
[4] Stanford Univ, Dept Mat Sci & Engn, Stanford, CA 94305 USA
来源
基金
加拿大自然科学与工程研究理事会;
关键词
PULSED-LASER DEPOSITION; LICOO2; THIN-FILMS; VOLUMETRIC CAPACITY; LITHIUM BATTERIES; CATHODES; PERFORMANCES; ARCHITECTURE; TORTUOSITY; DESIGN;
D O I
10.1021/acs.jpclett.8b02229
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
Increasing the loading of active materials by thickening the battery electrode coating can enhance the energy density of a Li-ion cell, but the trade-off is the much reduced Li+ transport kinetics. To reach the optimum energy and power density for thick electrodes, the effective chemical diffusion coefficient of Li+ (Du) must be maximized. However, the diffusion of Li+ inside an electrode is a complex process involving both microscopic and macroscopic processes. Fundamental understandings are needed on the rate-limiting process that governs the diffusion kinetics of Li+ to minimize the negative impact of the large electrode thickness on their electrochemical performance. In this work, lithium Ni-Mn-Co oxide (NMC) cathodes of various thicknesses ranging from 100 to 300 mu m were used as a model system to study the rate-limiting diffusion process during charge/discharge. The rate-limiting diffusion coefficient of Li+ was investigated and quantified, which was correlated to the electrochemical performance degradation of thick electrodes. It is revealed here that the under-utilization of the active material was caused by the limited diffusion of Li+ inside the porous electrode, leading to a critical electrode thickness, beyond which the specific capacity was significantly reduced.
引用
收藏
页码:5100 / 5104
页数:9
相关论文
共 50 条
  • [1] Negative electrodes for Li-ion batteries
    Kinoshita, K
    Zaghib, K
    JOURNAL OF POWER SOURCES, 2002, 110 (02) : 416 - 423
  • [2] Understanding Rate-Limiting Mechanisms in LiFePO4 Cathodes for Li-Ion Batteries
    Thorat, Indrajeet V.
    Joshi, Tapesh
    Zaghib, Karim
    Harb, John N.
    Wheeler, Dean R.
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2011, 158 (11) : A1185 - A1193
  • [3] Li-Ion Batteries
    Battaglini, John
    ADVANCED MATERIALS & PROCESSES, 2010, 168 (07): : 26 - 27
  • [4] Li-ion batteries
    Battaglini, John
    Advanced Materials and Processes, 2010, 168 (07): : 26 - 27
  • [5] LI-ION BATTERIES
    不详
    ELECTRONICS WORLD, 2016, 122 (1957): : 6 - 6
  • [6] Tuning Rate-Limiting Factors for Graphite Anodes in Fast-Charging Li-Ion Batteries
    Wang, Yinchao
    Ji, Yuchen
    Yin, Zu-Wei
    Sheng, Tian
    Cao, Aimin
    Zhao, Wenguang
    Huang, Yuxiang
    Li, Jun-Tao
    Pan, Feng
    Yang, Luyi
    ADVANCED FUNCTIONAL MATERIALS, 2024, 34 (29)
  • [7] Corrosive fracture of electrodes in Li-ion batteries
    Xu, Rong
    Zhao, Kejie
    JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2018, 121 : 258 - 280
  • [8] Dichalcogenide nanotube electrodes for Li-ion batteries
    Dominko, R
    Arcon, D
    Mrzel, A
    Zorko, A
    Cevc, P
    Venturini, P
    Gaberscek, M
    Remskar, M
    Mihailovic, D
    ADVANCED MATERIALS, 2002, 14 (21) : 1531 - +
  • [9] Electrochemomechanics of Electrodes in Li-Ion Batteries: A Review
    Xu, Rong
    Zhao, Kejie
    JOURNAL OF ELECTROCHEMICAL ENERGY CONVERSION AND STORAGE, 2016, 13 (03)
  • [10] Modeling fractal electrodes for Li-ion batteries
    Teixidor, G. Turon
    Park, B. Y.
    Mukherjee, P. P.
    Kang, Q.
    Madou, M. J.
    ELECTROCHIMICA ACTA, 2009, 54 (24) : 5928 - 5936