Sep 20 – 25, 2026
University of Graz
Europe/Vienna timezone

Hydrogen Activation via Dihydride Formation on a Rh1/Fe3O4(001) Single‐Atom Catalyst

Sep 23, 2026, 5:00 PM
15m
HS 12.01 (University of Graz)

HS 12.01

University of Graz

12 - Heizhaus, ground floor
3) Contributed talk OGD: Surfaces, Interfaces and Thin Films Parallel

Speaker

Gareth Parkinson

Description

Hydrogen activation is a key elementary step in catalytic hydrogenation. In heterogeneous catalysis, it usually proceeds through dissociative adsorption on metal nanoparticles followed by surface diffusion or spillover, whereas homogeneous catalysts activate H2 through dihydride or dihydrogen intermediates at a single metal center. Here, we show that isolated Rh adatoms supported on Fe3O4(001) activate hydrogen through formation of a stable dihydride species without atomic H spillover. Temperature-programmed desorption, x-ray photoelectron spectroscopy, and scanning tunneling microscopy collectively reveal strong (≈1 eV) hydrogen adsorption exclusively at isolated Rh1 sites, while isotope-exchange experiments further demonstrate that hydrogen remains localized. Density-functional theory-based calculations indicate a barrierless conversion from molecular H2 to the dihydride, and random-phase approximation calculations further confirm the relative stability of the dihydride. Together, these results show that single-atom Rh sites cleave hydrogen through a dihydride pathway analogous to homogeneous complexes, establishing a mechanistic bridge between homogeneous and heterogeneous catalysis.

Author

Gareth Parkinson

Co-authors

Cesare Franchini (Computational Materials Physics, University of Vienna, Austria) Dr Chunlei wang Dr Florian Kraushofer (TU Wien) Florian Libisch (TU Wien, Institute for Theoretical Physics, Vienna, Austria) Dr Jiri Pavelec (TU Wien) Mrs Lena Puntscher (TU Wien) Mr Maosheng Hao (TU Wien) Dr Matthias Meier (Univ. Wien) Michael Schmid (TU Wien) Mr Nail Barama (TU Wien) Mr Panukorn Sombut (TU Wien) Ulrike Diebold (Institute of Applied Physics, TU Wien, Austria)

Presentation materials

There are no materials yet.