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Improving accuracy of electrochemical capacitance and solvation energetics in first-principles calculations
- Source :
- The Journal of Chemical Physics. 148:144105
- Publication Year :
- 2018
- Publisher :
- AIP Publishing, 2018.
-
Abstract
- Reliable first-principles calculations of electrochemical processes require accurate prediction of the interfacial capacitance, a challenge for current computationally-efficient continuum solvation methodologies. We develop a model for the double layer of a metallic electrode that reproduces the features of the experimental capacitance of Ag(100) in a non-adsorbing, aqueous electrolyte, including a broad hump in the capacitance near the Potential of Zero Charge (PZC), and a dip in the capacitance under conditions of low ionic strength. Using this model, we identify the necessary characteristics of a solvation model suitable for first-principles electrochemistry of metal surfaces in non-adsorbing, aqueous electrolytes: dielectric and ionic nonlinearity, and a dielectric-only region at the interface. The dielectric nonlinearity, caused by the saturation of dipole rotational response in water, creates the capacitance hump, while ionic nonlinearity, caused by the compactness of the diffuse layer, generates the capacitance dip seen at low ionic strength. We show that none of the previously developed solvation models simultaneously meet all these criteria. We design the Nonlinear Electrochemical Soft-Sphere solvation model (NESS) which both captures the capacitance features observed experimentally, and serves as a general-purpose continuum solvation model.<br />7 pages, 4 figures, 2 tables; supplementary information (SI.pdf) in source archive
- Subjects :
- Materials science
bepress|Physical Sciences and Mathematics|Physics
Implicit solvation
FOS: Physical sciences
General Physics and Astronomy
Ionic bonding
02 engineering and technology
Dielectric
Electrolyte
01 natural sciences
Capacitance
Physics - Chemical Physics
0103 physical sciences
Physics::Chemical Physics
Physical and Theoretical Chemistry
Chemical Physics (physics.chem-ph)
Double layer (biology)
Condensed Matter - Materials Science
010304 chemical physics
Solvation
Materials Science (cond-mat.mtrl-sci)
Computational Physics (physics.comp-ph)
021001 nanoscience & nanotechnology
Dipole
Chemical physics
0210 nano-technology
Physics - Computational Physics
Subjects
Details
- ISSN :
- 10897690 and 00219606
- Volume :
- 148
- Database :
- OpenAIRE
- Journal :
- The Journal of Chemical Physics
- Accession number :
- edsair.doi.dedup.....3484d84d1c478b804b2d541ee5826459