Thermodynamically Consistent Model for Space-Charge-Layer Formation in a Solid Electrolyte

被引:98
作者
Braun, Stefanie [1 ,2 ]
Yada, Chihiro [3 ]
Latz, Arnulf [1 ,2 ,4 ]
机构
[1] German Aerosp Ctr, Inst Engn Thermodynam, D-70569 Stuttgart, Germany
[2] Helmholtz Inst Electrochem Energy Storage Ulm, D-89081 Ulm, Germany
[3] Toyota Motor Europe NV SA, B-1930 Zaventem, Belgium
[4] Univ Ulm, D-89081 Ulm, Germany
关键词
LITHIUM-ION BATTERIES; NANO-IONICS; CONDUCTORS;
D O I
10.1021/acs.jpcc.5b02679
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
We derive a mathematical model for space-charge-layer formation in a solid electrolyte based on first principles only. Consistent with the second law of thermodynamics, we employ mass, momentum, and energy conservation, supplemented with constitutive assumptions in the form of a Helmholtz free-energy functional. The resulting system of differential equations is solved semianalytically for a stationary 1D case, and the parametric dependencies of the space-charge layers forming at the boundaries under the influence of an external voltage are studied. We present results for different applied potentials, dielectric susceptibilities, and other parameters and compare our results with experiments. The predicted space-charge layers at the boundaries are in general not symmetric due to the restricted mobility of the anion lattice. Their size is found to be approximately 1 order of magnitude larger compared with liquid electrolytes, even if all macroscopic properties like mass density, dielectric constant, etc. are the same. Depending strongly on the dielectric properties of the material, typical widths of space-charge layers in some glass ceramics with very high dielectric susceptibility are predicted to be as large as several hundreds of nanometers, in qualitative agreement with experimental results in literature.
引用
收藏
页码:22281 / 22288
页数:8
相关论文
共 29 条
[1]   Thin-film lithium and lithium-ion batteries [J].
Bates, JB ;
Dudney, NJ ;
Neudecker, B ;
Ueda, A ;
Evans, CD .
SOLID STATE IONICS, 2000, 135 (1-4) :33-45
[2]   Diffuse-charge dynamics in electrochemical systems [J].
Bazant, Martin Z. ;
Thornton, Katsuyo ;
Ajdari, Armand .
Physical Review E - Statistical, Nonlinear, and Soft Matter Physics, 2004, 70 (2 1) :021506-1
[3]   Near constant loss regime in fast ionic conductors analyzed by impedance and NMR spectroscopies [J].
Bucheli, Wilmer ;
Arbi, Kamel ;
Sanz, Jesus ;
Nuzhnyy, Dmitry ;
Kamba, Stanislav ;
Varez, Alejandro ;
Jimenez, Ricardo .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2014, 16 (29) :15346-15354
[4]   A Contribution to the Theory of Electrocapillarity [J].
Chapman, David Leonard .
PHILOSOPHICAL MAGAZINE, 1913, 25 (148) :475-481
[5]  
Cleri F, 1998, J AM CERAM SOC, V81, P501, DOI 10.1111/j.1151-2916.1998.tb02368.x
[6]   THE THERMODYNAMICS OF ELASTIC MATERIALS WITH HEAT CONDUCTION AND VISCOSITY [J].
COLEMAN, BD ;
NOLL, W .
ARCHIVE FOR RATIONAL MECHANICS AND ANALYSIS, 1963, 13 (03) :167-178
[7]  
de Groot S. R., 1969, NONEQUILIBRIUM THERM
[8]   Overcoming the shortcomings of the Nernst-Planck model [J].
Dreyer, Wolfgang ;
Guhlke, Clemens ;
Mueller, Ruediger .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2013, 15 (19) :7075-7086
[9]  
Gouy M., 1910, J. Phys. Theor. Appl, V9, P457, DOI DOI 10.1051/JPHYSTAP:019100090045700
[10]   New methods for calculating the free energy of charged defects in solid electrolytes [J].
Horton, Robert M. ;
Haslam, Andrew J. ;
Galindo, Amparo ;
Jackson, George ;
Finnis, Michael W. .
JOURNAL OF PHYSICS-CONDENSED MATTER, 2013, 25 (39)