TY - JOUR
T1 - Carbon-Binder Weight Loading Optimization for Improved Lithium-Ion Battery Rate Capability
AU - Usseglio-Viretta, Francois L.E.
AU - Colclasure, Andrew M.
AU - Dunlop, Alison R.
AU - Trask, Stephen E.
AU - Jansen, Andrew N.
AU - Abraham, Daniel P.
AU - Rodrigues, Marco Tulio F.
AU - Dufek, Eric J.
AU - Tanim, Tanvir R.
AU - Chinnam, Parameswara R.
AU - Ha, Yeyoung
AU - Smith, Kandler
N1 - Funding Information:
Funding is provided by the U.S. DOE Office of Vehicle Technology Energy Storage Program, eXtreme Fast Charge and Cell Evaluation of Lithium-Ion Batteries (XCEL) Program, program manager Samuel Gillard. This work is authored in part by the National Renewable Energy Laboratory, United States, operated by Alliance for Sustainable Energy, LLC, for the U.S. Department of Energy (DOE) under Contract No. DE-AC36–08GO28308, in part by Argonne National Laboratory, which is a U.S. Department of Energy Office of Science Laboratory operated by UChicago Argonne, LLC under Contract No. DE-AC02–06CH11357, and in part by Idaho National Lab, United States, operated by Battelle Energy Alliance for the U.S. Department of Energy under contract DE-AC07–05ID14517. The views expressed in the article do not necessarily represent the views of the DOE or the U.S. Government. The U.S. Government retains and the publisher, by accepting the article for publication, acknowledges that the U.S. Government retains a nonexclusive, paid-up, irrevocable, worldwide license to publish or reproduce the published form of this work, or allow others to do so, for U.S. Government purposes.
Publisher Copyright:
© 2022 The Author(s). Published on behalf of The Electrochemical Society by IOP Publishing Limited.
PY - 2022/7
Y1 - 2022/7
N2 - Battery performance is strongly correlated with electrode microstructure and weight loading of the electrode components. Among them are the carbon-black and binder additives that enhance effective conductivity and provide mechanical integrity. However, these both reduce effective ionic transport in the electrolyte phase and reduce energy density. Therefore, an optimal additive loading is required to maximize performance, especially for fast charging where ionic transport is essential. Such optimization analysis is however challenging due to the nanoscale imaging limitations that prevent characterizing this additive phase and thus quantifying its impact on performance. Herein, an additive-phase generation algorithm has been developed to remedy this limitation and identify percolation threshold used to define a minimal additive loading. Improved ionic transport coefficients from reducing additive loading has been then quantified through homogenization calculation, macroscale model fitting, and experimental symmetric cell measurement, with good agreement between the methods. Rate capability test demonstrates capacity improvement at fast charge at the beginning of life, from 37% to 55%, respectively for high and low additive loading during 6C CC charging, in agreement with macroscale model, and attributed to a combination of lower cathode impedance, reduced electrode tortuosity and cathode thickness.
AB - Battery performance is strongly correlated with electrode microstructure and weight loading of the electrode components. Among them are the carbon-black and binder additives that enhance effective conductivity and provide mechanical integrity. However, these both reduce effective ionic transport in the electrolyte phase and reduce energy density. Therefore, an optimal additive loading is required to maximize performance, especially for fast charging where ionic transport is essential. Such optimization analysis is however challenging due to the nanoscale imaging limitations that prevent characterizing this additive phase and thus quantifying its impact on performance. Herein, an additive-phase generation algorithm has been developed to remedy this limitation and identify percolation threshold used to define a minimal additive loading. Improved ionic transport coefficients from reducing additive loading has been then quantified through homogenization calculation, macroscale model fitting, and experimental symmetric cell measurement, with good agreement between the methods. Rate capability test demonstrates capacity improvement at fast charge at the beginning of life, from 37% to 55%, respectively for high and low additive loading during 6C CC charging, in agreement with macroscale model, and attributed to a combination of lower cathode impedance, reduced electrode tortuosity and cathode thickness.
UR - https://www.scopus.com/pages/publications/85134805056
UR - https://www.mendeley.com/catalogue/b72d3fd3-1d67-32d8-83c4-11294a06a5ed/
U2 - 10.1149/1945-7111/ac7ef9
DO - 10.1149/1945-7111/ac7ef9
M3 - Article
AN - SCOPUS:85134805056
SN - 0013-4651
VL - 169
JO - Journal of the Electrochemical Society
JF - Journal of the Electrochemical Society
IS - 7
M1 - 070519
ER -