Water molecules adsorbed on inorganic substrates play an important role in several technological applications. In the presence of light atoms in adsorbates, nuclear quantum effects (NQEs) influence the structural stability and the dynamical properties of these systems. In this work, we explore the impact of NQEs on the dissociation of water wires on stepped Pt(221) surfaces. By performing ab initio molecular dynamics simulations with van der Waals corrected density functional theory, we note that several competing minima for both intact and dissociated structures are accessible at finite temperatures, making it important to assess whether harmonic estimates of the quantum free energy are sufficient to determine the relative stability of the different states. We thus perform ab initio path integral molecular dynamics (PIMD) in order to calculate these contributions taking into account the conformational entropy and anharmonicities at finite temperatures. We propose that when adsorption is weak and NQEs on the substrate are negligible, PIMD simulations can be performed through a simple partition of the system, resulting in considerable computational savings. We then calculate the full contribution of NQEs to the free energies, including also anharmonic terms. We find that they result in an increase of up to 20% of the quantum contribution to the dissociation free energy compared with the harmonic estimates. We also find that the dissociation process has a negligible contribution from tunneling but is dominated by zero point energies, which can enhance the rate of dissociation by three orders of magnitude. Finally we highlight how both temperature and NQEs indirectly impact dipoles and the redistribution of electron density, causing work function changes of up to 0.4 eV with respect to static estimates. This quantitative determination of the change in the work function provides a possible approach to determine experimentally the most stable configurations of water oligomers on the stepped surfaces.
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14 March 2018
Research Article|
November 22 2017
Decisive role of nuclear quantum effects on surface mediated water dissociation at finite temperature
Special Collection:
Nuclear Quantum Effects
Yair Litman;
Yair Litman
1
Fritz Haber Institute of the Max Planck Society
, Faradayweg 4–6, 14195 Berlin, Germany
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Davide Donadio
;
Davide Donadio
2
Department of Chemistry, University of California Davis
, One Shields Ave., Davis, California 95616, USA
3
IKERBASQUE, Basque Foundation for Science
, E-48011 Bilbao, Spain
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Michele Ceriotti
;
Michele Ceriotti
4
Laboratory of Computational Science and Modelling, École Polytechnique Fédérale de Lausanne
, Lausanne, Switzerland
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Mariana Rossi
Mariana Rossi
1
Fritz Haber Institute of the Max Planck Society
, Faradayweg 4–6, 14195 Berlin, Germany
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J. Chem. Phys. 148, 102320 (2018)
Article history
Received:
August 30 2017
Accepted:
October 31 2017
Citation
Yair Litman, Davide Donadio, Michele Ceriotti, Mariana Rossi; Decisive role of nuclear quantum effects on surface mediated water dissociation at finite temperature. J. Chem. Phys. 14 March 2018; 148 (10): 102320. https://doi.org/10.1063/1.5002537
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