Mesoscale Analysis of Conductive Binder Domain Morphology in Lithium-Ion Battery Electrodes

被引:110
|
作者
Trembacki, Bradley L. [1 ]
Mistry, Aashutosh N. [2 ]
Noble, David R. [1 ]
Ferraro, Mark E. [1 ]
Mukherjee, Partha P. [2 ]
Roberts, Scott A. [1 ]
机构
[1] Sandia Natl Labs, Engn Sci Ctr, POB 5800, Albuquerque, NM 87185 USA
[2] Purdue Univ, Sch Mech Engn, W Lafayette, IN 47907 USA
关键词
FINITE-ELEMENT-METHOD; X-RAY TOMOGRAPHY; POLYMERIC BINDER; TORTUOSITY; MICROSTRUCTURE; TRANSPORT; CATHODE; INHOMOGENEITIES; SIMULATIONS;
D O I
10.1149/2.0981813jes
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Typical lithium-ion battery electrodes are porous composites comprised of active material, conductive additives, and polymeric binder, with liquid electrolyte filling the pores. The mesoscale morphology of these constituent phases has a significant impact on both electrochemical reactions and transport across the electrode, which can ultimately limit macroscale battery performance. We reconstruct published X-ray computed tomography (XCT) data from a NMC333 cathode to study mesoscale electrode behavior on an as-manufactured electrode geometry. We present and compare two distinct models that computationally generate a composite binder domain (CBD) phase that represents both the polymeric binder and conductive additives. We compare the effect of the resulting CBD morphologies on electrochemically active area, pore phase tortuosity, and effective electrical conductivity. Both dense and nanoporous CBD are considered, and we observe that acknowledging CBD nanoporosity significantly increases effective electrical conductivity by up to an order of magnitude. Properties are compared to published measurements as well as to approximate values often used in homogenized battery-scale models. All reconstructions exhibit less than 20% of the standard electrochemically active area approximation. Order of magnitude discrepancies are observed between two popular transport simulation numerical schemes (finite element method and finite volume method), highlighting the importance of careful numerical verification. (c) The Author(s) 2018. Published by ECS. This is an open access article distributed under the terms of the Creative Commons Attribution Non-Commercial No Derivatives 4.0 License (CC BY-NC-ND, http://creativecommons.org/licenses/by-nc-nd/4.0/), which permits non-commercial reuse, distribution, and reproduction in any medium, provided the original work is not changed in any way and is properly cited. For permission for commercial reuse, please email: oa@electrochem.org.
引用
收藏
页码:E725 / E736
页数:12
相关论文
共 50 条
  • [21] Tortuosity Anisotropy in Lithium-Ion Battery Electrodes
    Ebner, Martin
    Chung, Ding-Wen
    Garcia, R. Edwin
    Wood, Vanessa
    ADVANCED ENERGY MATERIALS, 2014, 4 (05)
  • [22] Mesoscale Electrochemical Performance Simulation of 3D Interpenetrating Lithium-Ion Battery Electrodes
    Trembacki, Bradley
    Duoss, Eric
    Oxberry, Geoffrey
    Stadermann, Michael
    Murthy, Jayathi
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2019, 166 (06) : A923 - A934
  • [23] Microbial-Copolyester-Based Eco-Friendly Binder for Lithium-Ion Battery Electrodes
    Yoon, Juhee
    Han, Geonhee
    Cho, Sungmin
    Lee, Changsuk
    Lee, Eunhye
    Yoon, Kichull
    Jin, Hyoung-Joon
    ACS APPLIED POLYMER MATERIALS, 2023, 5 (02) : 1199 - 1207
  • [24] Model Development for Binder Migration within Lithium-Ion Battery Electrodes during the Drying Process
    Zihrul, Christiane
    Lippke, Mark
    Kwade, Arno
    BATTERIES-BASEL, 2023, 9 (09):
  • [25] Microstructure of Conductive Binder Domain for Electrical Conduction in Next-Generation Lithium-Ion Batteries
    Lu, Xuesong
    Lian, Guo J.
    Ge, Ruihuan
    Parker, James
    Sadan, Milan K.
    Smith, Rachel
    Cumming, Denis
    ENERGY TECHNOLOGY, 2023,
  • [26] Microstructure of Conductive Binder Domain for Electrical Conduction in Next-Generation Lithium-Ion Batteries
    Lu, Xuesong
    Lian, Guo J.
    Ge, Ruihuan
    Parker, James
    Sadan, Milan K.
    Smith, Rachel
    Cumming, Denis
    ENERGY TECHNOLOGY, 2023, 11 (10)
  • [27] Analysis of Long-Range Interaction in Lithium-Ion Battery Electrodes
    Mistry, Aashutosh
    Juarez-Robles, Daniel
    Stein, Malcolm
    Smith, Kandler
    Mukherjee, Partha P.
    JOURNAL OF ELECTROCHEMICAL ENERGY CONVERSION AND STORAGE, 2016, 13 (03)
  • [28] Stochastic Analysis of Diffusion Induced Damage in Lithium-Ion Battery Electrodes
    Barai, Pallab
    Mukherjee, Partha P.
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2013, 160 (06) : A955 - A967
  • [29] Measurement and Analysis of Adhesion Property of Lithium-Ion Battery Electrodes with SAICAS
    Son, Bongki
    Ryou, Myung-Hyun
    Choi, Jaecheol
    Lee, Taejoo
    Yu, Hyung Kyun
    Kim, Jong Hun
    Lee, Yong Min
    ACS APPLIED MATERIALS & INTERFACES, 2014, 6 (01) : 526 - 531
  • [30] Self-reducing molecular ink for printed electronics and lithium-ion battery cathodes as conductive binder
    Qi, Wenning
    Han, Ruolin
    Quan, Hui
    Guo, Ruilu
    Gao, Dali
    Zhou, Zheng
    Chen, Guang-Xin
    Li, Qifang
    JOURNAL OF MATERIALS CHEMISTRY C, 2024, 12 (14) : 5114 - 5121