Pt/MnO Interface Induced Defects for High Reverse Water Gas Shift Activity

Abstract

The implementation of supported metal catalysts heavily relies on the synergistic interactions between metal nanoparticles and the material they are dispersed on. It is clear that interfacial perimeter sites have outstanding skills for turning catalytic reactions over, however, high activity and selectivity of the designed interface-induced metal distortion can also obtain catalysts for the most crucial industrial processes as evidenced in this paper. Herein, the beneficial synergy established between designed Pt nanoparticles and MnO in the course of the reverse water gas shift (RWGS) reaction resulted in a Pt/MnO catalyst having ≈10 times higher activity compared to the reference Pt/SBA-15 catalyst with >99 % CO selectivity. Under activation, a crystal assembly through the metallic Pt (110) and MnO evolved, where the plane distance differences caused a mismatched-row structure in softer Pt nanoparticles, which was identified by microscopic and surface-sensitive spectroscopic characterizations combined with density functional theory simulations. The generated edge dislocations caused the Pt lattice expansion which led to the weakening of the Pt−CO bond. Even though MnO also exhibited an adverse effect on Pt by lowering the number of exposed metal sites, rapid desorption of the linearly adsorbed CO species governed the performance of the Pt/MnO in the RWGS.

Document Type

Article


Published version

Language

English

Subject

quimica

Pages

8 p.

Publisher

Wiley-VCH

Grant Agreement Number

AS gratefully acknowledges the support of FK 143583 and ZK is grateful for K 21 138714 and SNN_135918 project from the source of the National Research, Development and Innovation Fund.

The Ministry of Human Capacities through the 20391-3/2018/FEKUSTRAT, as well as Project no. TKP2021-NVA-19 under the TKP2021-NVA funding scheme of the Ministry for Innovation and Technology are acknowledged.

Project no. RRF-2.3.1-21-2022-00009, titled National Laboratory for Renewable Energy has been implemented with the support provided by the Recovery and Resilience Facility of the European Union within the framework of Programme Széchenyi Plan Plus

The Spanish Ministry of Science and Innovation is acknowledged for financial support (PRE2019-088791, PID2021-122516OB-I00, and Severo Ochoa Grant MCIN/AEI/10.13039/ 501100011033 CEX2019-000925-S)

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Angew Chem Int Ed - 2023 - Szenti - Pt MnO Interface Induced Defects for High Reverse Water Gas Shift Activity.pdf

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CC BY 4.0 DEED Attribution 4.0 International

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