Correlations between Molecular Structure, Solvation Topology, and Transport Properties of Aqueous Organic Flow Battery Electrolyte Solutions

被引:1
|
作者
Kumar, Nitesh [1 ,4 ]
Rishko, Wilma [1 ]
Fiedler, Kevin R. [2 ,3 ]
Hollas, Aaron [3 ]
Chun, Jaehun [1 ]
Johnson, Samantha I. [1 ]
机构
[1] Pacific Northwest Natl Lab, Phys & Computat Sci Directorate, Phys Sci Div, Richland, WA 99354 USA
[2] Washington State Univ Tricities, Dept Math, Richland, WA 99352 USA
[3] Pacific Northwest Natl Lab, Energy & Environm Directorate, Energy Proc & Mat Div, Richland, WA 99354 USA
[4] Washington State Univ, Dept Chem, Pullman, WA 99163 USA
来源
ACS MATERIALS LETTERS | 2023年 / 5卷 / 11期
关键词
LIQUID ELECTROLYTES; ATOMIC CHARGES; FORCE-FIELD; DYNAMICS; VISCOSITY; SIMULATIONS; COEFFICIENTS; MONOVALENT;
D O I
10.1021/acsmaterialslett.3c00838
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Aqueous organic redox flow batteries (AORFBs) are considered promising technologies for storing energy generated from renewable resources. However, designing organic electrolyte molecules is limited by gaps between fundamental understanding of coupling between solvation structure and dynamics and macroscopic transport properties like viscosity. Herein, we used molecular dynamics simulations to understand correlations among ionic molecular structures, ion clustering, and transport properties in 2,3-dihydrophenazine (2,3-DHP), a promising AORFB anolyte. We show that experimentally measured viscosity can be reproduced from simulations at relevant concentrations and that the asymmetric structure of 2,3-DHP leads to a unique inhomogeneity in the solvation topology. However, order parameters and metrics need to be developed for better correlations over spatiotemporal scales with careful consideration of the inhomogeneity of organic anolyte molecules. We show that the increased size and asymmetry of the anolyte lead to breakdown of assumptions within methods for determining ion transport mechanisms previously developed for Li-ion batteries.
引用
收藏
页码:3050 / 3057
页数:8
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