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A Molecular Density Functional Theory Approach to Electron Transfer Reactions
- Source :
- Chemical Science, Chemical Science, 2019, 10 (7), pp.2130-2143. ⟨10.1039/c8sc04512g⟩, Chemical Science, The Royal Society of Chemistry, 2019, 10 (7), pp.2130-2143. ⟨10.1039/c8sc04512g⟩
- Publication Year :
- 2018
- Publisher :
- arXiv, 2018.
-
Abstract
- Beyond the dielectric continuum description initiated by Marcus theory, the nowadays standard theoretical approach to study electron transfer (ET) reactions in solution or at interfaces is to use classical force field or ab initio Molecular Dynamics simulations. We propose here an alternative method based on liquid-state theory, namely molecular density functional theory, which is numerically much more efficient than simulations while still retaining the molecular nature of the solvent. We begin by reformulating molecular ET theory in a density functional language and show how to compute the various observables characterizing ET reactions from an ensemble of density functional minimizations. In particular, we define in that formulation the relevant order parameter of the reaction, the so-called vertical energy gap, and determine the Marcus free energy curves of both reactant and product states along that coordinate. Important thermodynamic quantities such as the reaction free energy and the reorganization free energies follow. We assess the validity of the method by studying the model Cl$^0\rightarrow$ Cl$^+$ and Cl$^0\rightarrow$ Cl$^-$ ET reactions in bulk water for which molecular dynamics results are available. The anionic case is found to violate the standard Marcus theory. Finally, we take advantage of the computational efficiency of the method to study the influence of confinement on the ET, by investigating the evolution of the reorganization free energy of the Cl$^0\rightarrow$ Cl$^+$ reaction when the atom approaches an atomistically resolved wall.<br />Comment: 30 pages, 10 figures, Chemical Science, 2019
- Subjects :
- Physics
Chemical Physics (physics.chem-ph)
010405 organic chemistry
Band gap
Thermodynamics
FOS: Physical sciences
Observable
General Chemistry
Dielectric
010402 general chemistry
01 natural sciences
Force field (chemistry)
0104 chemical sciences
3. Good health
Marcus theory
[CHIM.THEO]Chemical Sciences/Theoretical and/or physical chemistry
Electron transfer
Molecular dynamics
Chemistry
Physics - Chemical Physics
Molecular Density
Subjects
Details
- ISSN :
- 20416520 and 20416539
- Database :
- OpenAIRE
- Journal :
- Chemical Science, Chemical Science, 2019, 10 (7), pp.2130-2143. ⟨10.1039/c8sc04512g⟩, Chemical Science, The Royal Society of Chemistry, 2019, 10 (7), pp.2130-2143. ⟨10.1039/c8sc04512g⟩
- Accession number :
- edsair.doi.dedup.....4ab1399d3e0a456751eabc9b3232ae62
- Full Text :
- https://doi.org/10.48550/arxiv.1810.02168