Probing Redox Properties of Extreme Concentrations Relevant for Nonaqueous Redox-Flow Batteries

被引:5
作者
Stumme, Nathan [3 ]
Perera, Anton Sameera [1 ,2 ]
Horvath, Andrew [3 ]
Ruhunage, Sashen [1 ,2 ]
Duffy, Darby H. [3 ]
Koltonowski, Elise M. [3 ]
Tupper, Jackson [3 ]
Dzierba, Chad [4 ]
McEndaffer, Alie D. [4 ]
Teague, Craig M. [4 ]
Risko, Chad [1 ,2 ]
Shaw, Scott K. [3 ]
机构
[1] Univ Kentucky, Dept Chem, Lexington, KY 40506 USA
[2] Univ Kentucky, Ctr Appl Energy Res, Lexington, KY 40506 USA
[3] Univ Iowa, Dept Chem, Iowa City, IA 52242 USA
[4] Cornell Coll, Dept Chem, Mt Vernon, IA 52314 USA
基金
美国国家科学基金会;
关键词
nonaqueous redox flow batteries; energy storage; organic redox-active molecules; intermolecular interactions; molecular dynamics; vibrational spectroscopy; MOLECULAR-DYNAMICS; NITROXIDE RADICALS; SHEAR VISCOSITY; FORCE-FIELD; ENERGY; ELECTROLYTES; ASSOCIATION; CHEMISTRY; SOLVENTS; KINETICS;
D O I
10.1021/acsaem.2c03712
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
Redox-flow batteries are an emerging energy storage technology that can pair with intermittent renewable energy technologies. There remains a need, however, to understand physicochemical relationships among the solvent, electrolyte salt, and redox-active molecules that comprise catholyte and anolyte solutions. To examine this relationship, we detail a systematic study wherein the concentrations of the redox-active molecule 2,2,6,6-tetramethylpiperidine 1-oxyl (TEMPO) and TBAPF6 electrolyte salts are varied over concentrations of 1 mM to over 1000 mM in acetonitrile. Three series were investigated: (1) varying the concentration of TEMPO while holding the concentration of TBAPF6 constant, (2) varying the concentration of TBAPF6 while holding the concentration of TEMPO constant, and (3) varying both the concentration of TEMPO and TBAPF6 with a 5:1 TBAPF6:TEMPO ratio. Cyclic voltammetry data from macro-and microelectrodes were used to quantify diffusion coefficients and heterogeneous electron transfer rates, and these metrics were connected to the conductivity and viscosity to develop clear trends over the entire concentration range. Fundamental chemical interactions that lead to changes in physical properties were implicated via vibrational spectroscopy and molecular dynamics (MD) simulations. Trends in conductivity and viscosity for systems were inversely related and correlated to trends in diffusion coefficients and heterogeneous electron transfer rates. Intuitively, faster diffusion and electron-transfer rates occurred with lower TEMPO concentrations and higher TBAPF6 concentrations, with the majority of conditions falling in the general proximity of literature values (k0 = 0.1-0.5 cm/s, D approximate to (2.0-4.0) x 10-5 cm2/s). At the highest TBAPF6 concentrations, vibrational spectroscopy and MD simulations show that intermolecular interactions were more nuanced, and solvation and ion-pairing effects begin to influence electrochemical and physical properties. This functional approach including electrochemical and physical characterization paired with MD simulations provides a template for methodically studying systems for redox flow battery applications.
引用
收藏
页码:2819 / 2831
页数:13
相关论文
共 53 条
[1]   Gromacs: High performance molecular simulations through multi-level parallelism from laptops to supercomputers [J].
Abraham, Mark James ;
Murtola, Teemu ;
Schulz, Roland ;
Páll, Szilárd ;
Smith, Jeremy C. ;
Hess, Berk ;
Lindah, Erik .
SoftwareX, 2015, 1-2 :19-25
[2]   Evaluation of Two-Electron Bispyridinylidene Anolytes and a TEMPO Catholyte for Non-Aqueous Redox Flow Batteries [J].
Alkhayri, Fahad ;
Dyker, C. Adam .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2021, 168 (07)
[3]  
Attanayake N. H., CHEM MATER
[4]   Electrochemical Oxidation of Ferrocene: A Strong Dependence on the Concentration of the Supporting Electrolyte for Nonpolar Solvents [J].
Bao, Duoduo ;
Millare, Brent ;
Xia, Wei ;
Steyer, Benjamin G. ;
Gerasimenko, Alexander A. ;
Ferreira, Amy ;
Contreras, Antonio ;
Vullev, Valentine I. .
JOURNAL OF PHYSICAL CHEMISTRY A, 2009, 113 (07) :1259-1267
[5]  
Bard A., 2001, Electrochemical Methods Fundamentals and Applications, V2, p, P833
[6]   Quantum calculation of molecular energies and energy gradients in solution by a conductor solvent model [J].
Barone, V ;
Cossi, M .
JOURNAL OF PHYSICAL CHEMISTRY A, 1998, 102 (11) :1995-2001
[7]   Electrolyte solutions for technology - new aspects and approaches [J].
Barthel, J ;
Gores, HJ ;
Neueder, R ;
Schmid, A .
PURE AND APPLIED CHEMISTRY, 1999, 71 (09) :1705-1715
[8]   MOLECULAR-DYNAMICS WITH COUPLING TO AN EXTERNAL BATH [J].
BERENDSEN, HJC ;
POSTMA, JPM ;
VANGUNSTEREN, WF ;
DINOLA, A ;
HAAK, JR .
JOURNAL OF CHEMICAL PHYSICS, 1984, 81 (08) :3684-3690
[9]   Canonical sampling through velocity rescaling [J].
Bussi, Giovanni ;
Donadio, Davide ;
Parrinello, Michele .
JOURNAL OF CHEMICAL PHYSICS, 2007, 126 (01)
[10]   LigParGen web server: an automatic OPLS-AA parameter generator for organic ligands [J].
Dodda, Leela S. ;
de Vaca, Israel Cabeza ;
Tirado-Rives, Julian ;
Jorgensen, William L. .
NUCLEIC ACIDS RESEARCH, 2017, 45 (W1) :W331-W336