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DFT Insights into Hydrogen Spillover Mechanisms: Effects of Metal Species, Size, and Support
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DFT Insights into Hydrogen Spillover Mechanisms: Effects of Metal Species, Size, and Support

Cheng-Hsi Yeh, Ho Viet Thang, Yves Ira A. Reyes, Carmine ColucciniHsin-Yi Tiffany Chen
Journal of physical chemistry. C, 卷.129(13), 頁碼.6185-6195
03/04/2025

摘要

Chemistry Chemistry, Physical Materials Science Materials Science, Multidisciplinary Nanoscience & Nanotechnology Physical Sciences Science & Technology Science & Technology - Other Topics Technology
Hydrogen spillover is a crucial mechanism in heterogeneous catalysis. Herein, density functional theory calculations were conducted to study the metal-support interactions (MSI) and the hydrogen spillover mechanisms in terms of metal size, metal species, and support effects using single-atom (M-1) and four-atom cluster (M-4) models of Ru, Ni, and Pt, supported on anatase TiO2(101), rutile TiO2(110), MgO(100), MgO(110), and graphene. For M-1 systems, the binding energies (E-b) vary widely across different M-1 species and substrate surfaces. In contrast to M-1 systems whose MSI are affected by metal type, those supported M-4 models are determined primarily by the support: r-TiO2(110) > a-TiO2(101) > MgO(110) > MgO(100) > graphene. Thermodynamically favorable hydrogen spillover on oxide-supported M-1 models required hydrogen coverages (theta) of similar to 6 ML, whereas counterpart M-4 systems require similar to 3 ML. Therefore, oxide-supported cluster catalysts can facilitate favorable hydrogen spillover better than single-atom catalysts; hydrogen spillover to TiO2 is more favorable than to MgO. In contrast, no favorable hydrogen spillover was observed on graphene-supported M-1 and M-4 models. Despite considering the same route, different hydrogen spillover mechanisms are observed depending on the support: (i) on reducible TiO2, hydrogen spills over as a proton with the electron transferred to the support; (ii) on nonreducible MgO, hydrogen spills over as a proton but the electron remains localized to the bound metal; (iii) on graphene, hydrogen spills over as a neutral hydrogen atom. Notably, supported M-4 models with stronger MSI are predicted to exhibit a more facile hydrogen spillover from both thermodynamic and kinetic perspectives, particularly when considering the same metal species across different supports. These detailed insights are expected to advance the understanding of hydrogen spillover on catalysts, which will be valuable for their future design and development.

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https://doi.org/10.1021/acs.jpcc.4c08097檢視
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