4.7 Article

Generation of molybdenum hydride species via addition of molecular hydrogen across metal-oxygen bond at monolayer oxide/metal composite interface

Journal

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
Volume 45, Issue 4, Pages 2975-2988

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2019.11.135

Keywords

Oxide-metal composite; Hydrogenation; Molybdenum hydride; Thermodynamics; Potential energy profile; Electronic properties

Funding

  1. National Natural Science Foundation of China (NSFC) [21375092, 21976129, 21575097]
  2. Science and Technology Planning Project (Taizhou Science and Technology Bureau), Chemical Engineering & Technology of Zhejiang Province First-Class Discipline (Taizhou University) [1901GY21]
  3. Scientific Research Cultivation Project (Taizhou University) [2018PY023]

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Generation of molybdenum hydride species on monolayer oxide/metal composite via addition of molecular hydrogen across metal-oxygen bond is investigated for the first time utilizing periodic Van der Waals density-functional calculations. Lewis acid-base pair constructed by the interfacially defected oxide film and the metal support provides novel active sites for activating H-2. The produced heterolytic dissociative state exhibits negative dissociative adsorption energy of -0.315 eV which thermodynamically facilitate the dissociation process of H-2 on insulating oxide films. The penitential energy pathways are calculated to reveal the dynamics and reaction processes for H-2 splitting at the oxide-metal interface. The differential charge density contour, electronic density plots, particular occupied orbitals, work function and electron localization function of H-2 dissociation are interpreted to better understand the electronic properties of the unique dissociation behavior of H-2 at interfacially defected magnesia. It is anticipated that the results here could help understand the mechanism of hydrogenation reactions on nanostructured oxide film and provide useful clue for enhancing the reactivity of insulating oxide toward activating H-2. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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