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Operando Spectroscopic Study of the Dynamics of Ru Catalyst during Preferential Oxidation of CO and the Prevention of Ammonia Poisoning by Pt

[Image: see text] Hydrogen is a promising clean energy source. In domestic polymer electrolyte fuel cell systems, hydrogen is produced by reforming of natural gas; however, the reformate contains carbon monoxide (CO) as a major impurity. This CO is removed from the reformate by a combination of the...

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Autores principales: Sato, Katsutoshi, Zaitsu, Shuhei, Kitayama, Godai, Yagi, Sho, Kayada, Yuto, Nishida, Yoshihide, Wada, Yuichiro, Nagaoka, Katsutoshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9326823/
https://www.ncbi.nlm.nih.gov/pubmed/35911446
http://dx.doi.org/10.1021/jacsau.2c00195
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author Sato, Katsutoshi
Zaitsu, Shuhei
Kitayama, Godai
Yagi, Sho
Kayada, Yuto
Nishida, Yoshihide
Wada, Yuichiro
Nagaoka, Katsutoshi
author_facet Sato, Katsutoshi
Zaitsu, Shuhei
Kitayama, Godai
Yagi, Sho
Kayada, Yuto
Nishida, Yoshihide
Wada, Yuichiro
Nagaoka, Katsutoshi
author_sort Sato, Katsutoshi
collection PubMed
description [Image: see text] Hydrogen is a promising clean energy source. In domestic polymer electrolyte fuel cell systems, hydrogen is produced by reforming of natural gas; however, the reformate contains carbon monoxide (CO) as a major impurity. This CO is removed from the reformate by a combination of the water–gas shift reaction and preferential oxidation of CO (PROX). Currently, Ru-based catalysts are the most common type of PROX catalyst; however, their durability against ammonia (NH(3)) as an impurity produced in situ from trace amounts of nitrogen also contained in the reformate is an important issue. Previously, we found that addition of Pt to an Ru catalyst inhibited deactivation by NH(3). Here, we conducted operando XAFS and FT-IR spectroscopic analyses with simultaneous gas analysis to investigate the cause of the deactivation of an Ru-based PROX catalyst (Ru/α-Al(2)O(3)) by NH(3) and the mechanism of suppression of the deactivation by adding Pt (Pt/Ru/α-Al(2)O(3)). We found that nitric oxide (NO) produced by oxidation of NH(3) induces oxidation of the Ru nanoparticle surface, which deactivates the catalyst via a three-step process: First, NO directly adsorbs on Ru(0) to form NO-Ru(δ+), which then induces the formation of O-Ru(n+) by oxidation of the surrounding Ru(0). Then, O-Ru(m+) is formed by oxidation of Ru(0) starting from the O-Ru(n+) nuclei and spreading across the surface of the nanoparticle. Pt inhibits this process by alloying with Ru and inducing the decomposition of adsorbed NO, which keeps the Ru in a metallic state.
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spelling pubmed-93268232022-07-28 Operando Spectroscopic Study of the Dynamics of Ru Catalyst during Preferential Oxidation of CO and the Prevention of Ammonia Poisoning by Pt Sato, Katsutoshi Zaitsu, Shuhei Kitayama, Godai Yagi, Sho Kayada, Yuto Nishida, Yoshihide Wada, Yuichiro Nagaoka, Katsutoshi JACS Au [Image: see text] Hydrogen is a promising clean energy source. In domestic polymer electrolyte fuel cell systems, hydrogen is produced by reforming of natural gas; however, the reformate contains carbon monoxide (CO) as a major impurity. This CO is removed from the reformate by a combination of the water–gas shift reaction and preferential oxidation of CO (PROX). Currently, Ru-based catalysts are the most common type of PROX catalyst; however, their durability against ammonia (NH(3)) as an impurity produced in situ from trace amounts of nitrogen also contained in the reformate is an important issue. Previously, we found that addition of Pt to an Ru catalyst inhibited deactivation by NH(3). Here, we conducted operando XAFS and FT-IR spectroscopic analyses with simultaneous gas analysis to investigate the cause of the deactivation of an Ru-based PROX catalyst (Ru/α-Al(2)O(3)) by NH(3) and the mechanism of suppression of the deactivation by adding Pt (Pt/Ru/α-Al(2)O(3)). We found that nitric oxide (NO) produced by oxidation of NH(3) induces oxidation of the Ru nanoparticle surface, which deactivates the catalyst via a three-step process: First, NO directly adsorbs on Ru(0) to form NO-Ru(δ+), which then induces the formation of O-Ru(n+) by oxidation of the surrounding Ru(0). Then, O-Ru(m+) is formed by oxidation of Ru(0) starting from the O-Ru(n+) nuclei and spreading across the surface of the nanoparticle. Pt inhibits this process by alloying with Ru and inducing the decomposition of adsorbed NO, which keeps the Ru in a metallic state. American Chemical Society 2022-05-09 /pmc/articles/PMC9326823/ /pubmed/35911446 http://dx.doi.org/10.1021/jacsau.2c00195 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Sato, Katsutoshi
Zaitsu, Shuhei
Kitayama, Godai
Yagi, Sho
Kayada, Yuto
Nishida, Yoshihide
Wada, Yuichiro
Nagaoka, Katsutoshi
Operando Spectroscopic Study of the Dynamics of Ru Catalyst during Preferential Oxidation of CO and the Prevention of Ammonia Poisoning by Pt
title Operando Spectroscopic Study of the Dynamics of Ru Catalyst during Preferential Oxidation of CO and the Prevention of Ammonia Poisoning by Pt
title_full Operando Spectroscopic Study of the Dynamics of Ru Catalyst during Preferential Oxidation of CO and the Prevention of Ammonia Poisoning by Pt
title_fullStr Operando Spectroscopic Study of the Dynamics of Ru Catalyst during Preferential Oxidation of CO and the Prevention of Ammonia Poisoning by Pt
title_full_unstemmed Operando Spectroscopic Study of the Dynamics of Ru Catalyst during Preferential Oxidation of CO and the Prevention of Ammonia Poisoning by Pt
title_short Operando Spectroscopic Study of the Dynamics of Ru Catalyst during Preferential Oxidation of CO and the Prevention of Ammonia Poisoning by Pt
title_sort operando spectroscopic study of the dynamics of ru catalyst during preferential oxidation of co and the prevention of ammonia poisoning by pt
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9326823/
https://www.ncbi.nlm.nih.gov/pubmed/35911446
http://dx.doi.org/10.1021/jacsau.2c00195
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