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Tuning Surface Structure of Pd(3)Pb/Pt(n)Pb Nanocrystals for Boosting the Methanol Oxidation Reaction

Developing an efficient Pt‐based electrocatalyst with well‐defined structures for the methanol oxidation reaction (MOR) is critical, however, still remains a challenge. Here, a one‐pot approach is reported for the synthesis of Pd(3)Pb/Pt(n)Pb nanocubes with tunable Pt composition varying from 3.50 t...

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Detalles Bibliográficos
Autores principales: Wu, Xingqiao, Jiang, Yi, Yan, Yucong, Li, Xiao, Luo, Sai, Huang, Jingbo, Li, Junjie, Shen, Rong, Yang, Deren, Zhang, Hui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6918111/
https://www.ncbi.nlm.nih.gov/pubmed/31871873
http://dx.doi.org/10.1002/advs.201902249
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author Wu, Xingqiao
Jiang, Yi
Yan, Yucong
Li, Xiao
Luo, Sai
Huang, Jingbo
Li, Junjie
Shen, Rong
Yang, Deren
Zhang, Hui
author_facet Wu, Xingqiao
Jiang, Yi
Yan, Yucong
Li, Xiao
Luo, Sai
Huang, Jingbo
Li, Junjie
Shen, Rong
Yang, Deren
Zhang, Hui
author_sort Wu, Xingqiao
collection PubMed
description Developing an efficient Pt‐based electrocatalyst with well‐defined structures for the methanol oxidation reaction (MOR) is critical, however, still remains a challenge. Here, a one‐pot approach is reported for the synthesis of Pd(3)Pb/Pt(n)Pb nanocubes with tunable Pt composition varying from 3.50 to 2.37 and 2.07, serving as electrocatalysts toward MOR. Their MOR activities increase in a sequence of Pd(3)Pb/Pt(3.50)Pb << Pd(3)Pb/Pt(2.07)Pb < Pd(3)Pb/Pt(2.37)Pb, which are substantially higher than that of commercial Pt/C. Specifically, Pd(3)Pb/Pt(2.37)Pb electrocatalysts achieve the highest specific (13.68 mA cm(−2)) and mass (8.40 A mg(Pt) (−1)) activities, which are ≈8.8 and 6.8 times higher than those of commercial Pt/C, respectively. Structure characterizations show that Pd(3)Pb/Pt(2.37)Pb and Pd(3)Pb/Pt(2.07)Pb are dominated by hexagonal‐structured PtPb intermetallic phase on the surface, while the surface of Pd(3)Pb/Pt(3.50)Pb is mainly composed of face‐centered cubic (fcc)‐structured Pt(x)Pb phase. As such, hexagonal‐structured PtPb phase is much more active than the fcc‐structured Pt(x)Pb one toward MOR. This demonstration is supported by density functional theory calculations, where the hexagonal‐structured PtPb phase shows the lowest adsorption energy of CO. The decrease in CO adsorption energy and structural stability also endows Pd(3)Pb/Pt(n)Pb electrocatalysts with superior durability relative to commercial Pt/C.
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spelling pubmed-69181112019-12-23 Tuning Surface Structure of Pd(3)Pb/Pt(n)Pb Nanocrystals for Boosting the Methanol Oxidation Reaction Wu, Xingqiao Jiang, Yi Yan, Yucong Li, Xiao Luo, Sai Huang, Jingbo Li, Junjie Shen, Rong Yang, Deren Zhang, Hui Adv Sci (Weinh) Communications Developing an efficient Pt‐based electrocatalyst with well‐defined structures for the methanol oxidation reaction (MOR) is critical, however, still remains a challenge. Here, a one‐pot approach is reported for the synthesis of Pd(3)Pb/Pt(n)Pb nanocubes with tunable Pt composition varying from 3.50 to 2.37 and 2.07, serving as electrocatalysts toward MOR. Their MOR activities increase in a sequence of Pd(3)Pb/Pt(3.50)Pb << Pd(3)Pb/Pt(2.07)Pb < Pd(3)Pb/Pt(2.37)Pb, which are substantially higher than that of commercial Pt/C. Specifically, Pd(3)Pb/Pt(2.37)Pb electrocatalysts achieve the highest specific (13.68 mA cm(−2)) and mass (8.40 A mg(Pt) (−1)) activities, which are ≈8.8 and 6.8 times higher than those of commercial Pt/C, respectively. Structure characterizations show that Pd(3)Pb/Pt(2.37)Pb and Pd(3)Pb/Pt(2.07)Pb are dominated by hexagonal‐structured PtPb intermetallic phase on the surface, while the surface of Pd(3)Pb/Pt(3.50)Pb is mainly composed of face‐centered cubic (fcc)‐structured Pt(x)Pb phase. As such, hexagonal‐structured PtPb phase is much more active than the fcc‐structured Pt(x)Pb one toward MOR. This demonstration is supported by density functional theory calculations, where the hexagonal‐structured PtPb phase shows the lowest adsorption energy of CO. The decrease in CO adsorption energy and structural stability also endows Pd(3)Pb/Pt(n)Pb electrocatalysts with superior durability relative to commercial Pt/C. John Wiley and Sons Inc. 2019-10-29 /pmc/articles/PMC6918111/ /pubmed/31871873 http://dx.doi.org/10.1002/advs.201902249 Text en © 2019 The Authors. Published by WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Communications
Wu, Xingqiao
Jiang, Yi
Yan, Yucong
Li, Xiao
Luo, Sai
Huang, Jingbo
Li, Junjie
Shen, Rong
Yang, Deren
Zhang, Hui
Tuning Surface Structure of Pd(3)Pb/Pt(n)Pb Nanocrystals for Boosting the Methanol Oxidation Reaction
title Tuning Surface Structure of Pd(3)Pb/Pt(n)Pb Nanocrystals for Boosting the Methanol Oxidation Reaction
title_full Tuning Surface Structure of Pd(3)Pb/Pt(n)Pb Nanocrystals for Boosting the Methanol Oxidation Reaction
title_fullStr Tuning Surface Structure of Pd(3)Pb/Pt(n)Pb Nanocrystals for Boosting the Methanol Oxidation Reaction
title_full_unstemmed Tuning Surface Structure of Pd(3)Pb/Pt(n)Pb Nanocrystals for Boosting the Methanol Oxidation Reaction
title_short Tuning Surface Structure of Pd(3)Pb/Pt(n)Pb Nanocrystals for Boosting the Methanol Oxidation Reaction
title_sort tuning surface structure of pd(3)pb/pt(n)pb nanocrystals for boosting the methanol oxidation reaction
topic Communications
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6918111/
https://www.ncbi.nlm.nih.gov/pubmed/31871873
http://dx.doi.org/10.1002/advs.201902249
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