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Published on: April 10, 2019
Hydrogen Spillover from Pt, Pd, and Au Evaluated with MnO x Temperature-Programmed Reduction
Mohammad Hamidizirasefi1, Audrey M Battiste2, Angela Pathickal Abraham2
1Department of Chemical Engineering, The Pennsylvania State University, University Park, Pennsylvania 16802, United States.
Abstract:
Hydrogen spillover occurs when H2 adsorbs on an active metal and is then transferred to a reducible metal oxide. While spillover is involved in many catalytic reactions, fundamental studies of spillover have been limited by the paucity of experimental methods available to study it. Here, we develop an experimental temperature-programmed reduction (TPR) protocol to rapidly compare spillover from different metals (Pt, Pd, Au ) onto P25 titania, using MnO x reduction probe reaction. X-ray photoelectron and UV-visible spectroscopies indicated reduction to MnO in the presence and absence of active metals, and quantitative H2 consumption measurements were consistent across all samples. Observed MnO x reduction temperatures, which decrease by shifting as much as 150 °C, depend strongly on the metal loading and confirm H2 activation occurs at metal sites. Adding only 300 ppm Au caused the Kissinger apparent activation energy to decrease from 55 to <10 kJ/mol. Comparisons across metals and loadings indicate that MnO x reduction is limited by H2 activation only at very low metal loadings and temperatures. Gold induces the largest shift in MnO x reduction, indicating that it is the most competent spillover metal under these conditions. At moderately higher loadings (≥1 site/100 nm2), Pt and Au become equivalent, signaling that MnO x reduction is no longer limited by H2 activation at higher metal loadings. Palladium is moderately slower, consistent with the generation of a PdH x phase at low temperature. At higher active site loadings, MnO x reduction depends primarily on the surface concentration of spillover H, providing a simple and useful approach for comparing catalysts.
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