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Water Formation Reaction under Interfacial Confinement: Al0.25Si0.75O2 on O-Ru(0001)

Authors :
Ministerio de Economía y Competitividad (España)
Ministerio de Ciencia, Innovación y Universidades (España)
Cored, Jorge
Wang, Mengen
Akter, Nusnin
Darbari, Zubin
Xu, Yixin
Karagoz, Burcu
Waluyo, I.
Hunt, A.
Stacchiola, D.
Head, Ashley Rose
Concepción, Patricia
Lu, Deyu
Boscoboinik, Jorge Anibal
Ministerio de Economía y Competitividad (España)
Ministerio de Ciencia, Innovación y Universidades (España)
Cored, Jorge
Wang, Mengen
Akter, Nusnin
Darbari, Zubin
Xu, Yixin
Karagoz, Burcu
Waluyo, I.
Hunt, A.
Stacchiola, D.
Head, Ashley Rose
Concepción, Patricia
Lu, Deyu
Boscoboinik, Jorge Anibal
Publication Year :
2022

Abstract

Confined nanosized spaces at the interface between a metal and a seemingly inert material, such as a silicate, have recently been shown to influence the chemistry at the metal surface. In prior work, we observed that a bilayer (BL) silica on Ru(0001) can change the reaction pathway of the water formation reaction (WFR) near room temperature when compared to the bare metal. In this work, we looked at the effect of doping the silicate with Al, resulting in a stoichiometry of AlSiO . We investigated the kinetics of WFR at elevated H pressures and various temperatures under interfacial confinement using ambient pressure X-ray photoelectron spectroscopy. The apparent activation energy was lower than that on bare Ru(0001) but higher than that on the BL-silica/Ru(0001). The apparent reaction order with respect to H was also determined. The increased residence time of water at the surface, resulting from the presence of the BL-aluminosilicate (and its subsequent electrostatic stabilization), favors the so-called disproportionation reaction pathway (*HO + *O ↔ 2 *OH), but with a higher energy barrier than for pure BL-silica.

Details

Database :
OAIster
Publication Type :
Electronic Resource
Accession number :
edsoai.on1356201462
Document Type :
Electronic Resource