Simulating an electrochemical interface using charge dynamics
We present a simple classical method for treating charge mobility in metals adjacent to liquid solutions. The method, known as electrode charge dynamics, effectively bridges the computational gap between ab initio calculations on small metal clusters and large-scale simulations of metal surfaces wit...
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Institute for Condensed Matter Physics
2005-01-01
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Online Access: | http://dx.doi.org/10.5488/CMP.8.2.335 |
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doaj-a23b5e2ed6f340ad97638d6b11a6155d2020-11-24T21:06:39ZengInstitute for Condensed Matter PhysicsCondensed Matter Physics1607-324X2005-01-018233535610.5488/CMP.8.2.335Simulating an electrochemical interface using charge dynamicsC.G.GuymonR.L.RowleyJ.N.HarbD.R.WheelerWe present a simple classical method for treating charge mobility in metals adjacent to liquid solutions. The method, known as electrode charge dynamics, effectively bridges the computational gap between ab initio calculations on small metal clusters and large-scale simulations of metal surfaces with arbitrary geometry. We have obtained model parameters for a copper (111) metal surface using high-level quantum-mechanical calculations on a 10-atom copper cluster. We validated the model against the classical image-charge result and ab initio results on an 18-atom copper cluster. The model is used in molecular dynamics simulations to predict the structure of the fluid interface for neat water and for aqueous NaCl solution. We find that water is organized into a two-dimensional ice-like layer on the surface and that both Na<sup>+</sup> and Cl<sup>-</sup> are strongly bound to the copper. When charging the metal electrode, most of the electrolyte response occurs in the diffuse part of the double layer.http://dx.doi.org/10.5488/CMP.8.2.335simulationdouble layermolecular dynamicsab initiopotentialscopper (111) surfacewater |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
C.G.Guymon R.L.Rowley J.N.Harb D.R.Wheeler |
spellingShingle |
C.G.Guymon R.L.Rowley J.N.Harb D.R.Wheeler Simulating an electrochemical interface using charge dynamics Condensed Matter Physics simulation double layer molecular dynamics ab initio potentials copper (111) surface water |
author_facet |
C.G.Guymon R.L.Rowley J.N.Harb D.R.Wheeler |
author_sort |
C.G.Guymon |
title |
Simulating an electrochemical interface using charge dynamics |
title_short |
Simulating an electrochemical interface using charge dynamics |
title_full |
Simulating an electrochemical interface using charge dynamics |
title_fullStr |
Simulating an electrochemical interface using charge dynamics |
title_full_unstemmed |
Simulating an electrochemical interface using charge dynamics |
title_sort |
simulating an electrochemical interface using charge dynamics |
publisher |
Institute for Condensed Matter Physics |
series |
Condensed Matter Physics |
issn |
1607-324X |
publishDate |
2005-01-01 |
description |
We present a simple classical method for treating charge mobility in metals adjacent to liquid solutions. The method, known as electrode charge dynamics, effectively bridges the computational gap between ab initio calculations on small metal clusters and large-scale simulations of metal surfaces with arbitrary geometry. We have obtained model parameters for a copper (111) metal surface using high-level quantum-mechanical calculations on a 10-atom copper cluster. We validated the model against the classical image-charge result and ab initio results on an 18-atom copper cluster. The model is used in molecular dynamics simulations to predict the structure of the fluid interface for neat water and for aqueous NaCl solution. We find that water is organized into a two-dimensional ice-like layer on the surface and that both Na<sup>+</sup> and Cl<sup>-</sup> are strongly bound to the copper. When charging the metal electrode, most of the electrolyte response occurs in the diffuse part of the double layer. |
topic |
simulation double layer molecular dynamics ab initio potentials copper (111) surface water |
url |
http://dx.doi.org/10.5488/CMP.8.2.335 |
work_keys_str_mv |
AT cgguymon simulatinganelectrochemicalinterfaceusingchargedynamics AT rlrowley simulatinganelectrochemicalinterfaceusingchargedynamics AT jnharb simulatinganelectrochemicalinterfaceusingchargedynamics AT drwheeler simulatinganelectrochemicalinterfaceusingchargedynamics |
_version_ |
1716765151559942144 |