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Pt(3)Sn nanoparticles enriched with SnO(2)/Pt(3)Sn interfaces for highly efficient alcohol electrooxidation

Pt(3)Sn nanoparticles (NPs) enriched with Pt(3)Sn/ultra-small SnO(2) interfaces (Pt(3)Sn@u-SnO(2)/NG) were synthesized through a thermal treatment of Pt(2)Sn/NG in a H(2) atmosphere, followed by annealing under H(2) and air conditions. The unique structure of Pt(3)Sn NPs enriched with Pt(3)Sn/SnO(2)...

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Autores principales: Wang, Zichen, Wang, Liang, Zhu, Wangbin, Zeng, Tang, Wu, Wei, Lei, Zhao, Tan, Yangyang, Lv, Haifeng, Cheng, Niancai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9419862/
https://www.ncbi.nlm.nih.gov/pubmed/36132342
http://dx.doi.org/10.1039/d1na00314c
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author Wang, Zichen
Wang, Liang
Zhu, Wangbin
Zeng, Tang
Wu, Wei
Lei, Zhao
Tan, Yangyang
Lv, Haifeng
Cheng, Niancai
author_facet Wang, Zichen
Wang, Liang
Zhu, Wangbin
Zeng, Tang
Wu, Wei
Lei, Zhao
Tan, Yangyang
Lv, Haifeng
Cheng, Niancai
author_sort Wang, Zichen
collection PubMed
description Pt(3)Sn nanoparticles (NPs) enriched with Pt(3)Sn/ultra-small SnO(2) interfaces (Pt(3)Sn@u-SnO(2)/NG) were synthesized through a thermal treatment of Pt(2)Sn/NG in a H(2) atmosphere, followed by annealing under H(2) and air conditions. The unique structure of Pt(3)Sn NPs enriched with Pt(3)Sn/SnO(2) interfaces was observed on the Pt(3)Sn@u-SnO(2)/NG catalyst based on HRTEM. The optimized Pt(3)Sn@u-SnO(2)/NG catalyst achieves high catalytic activity with an ethanol oxidation reaction (EOR) activity of 366 mA mg(Pt)(−1) and a methanol oxidation reaction (MOR) activity of 503 mA mg(Pt)(−1) at the potential of 0.7 V, which are eight-fold and five-fold higher than those for the commercial Pt/C catalyst (44 and 99 mA mg(Pt)(−1), respectively). The Pt(3)Sn@u-SnO(2)/NG catalyst is found to be 3 times more stable and have higher CO tolerance than Pt/C. The outstanding performance of the Pt(3)Sn@u-SnO(2)/NG catalyst should be ascribed to the synergetic effect induced by the unique structure of Pt(3)Sn NPs enriched with Pt(3)Sn/SnO(2) interfaces. The synergetic effect between Pt(3)Sn NPs and ultra-small SnO(2) increases the performance for alcohol oxidation because the Sn in both Pt(3)Sn and SnO(2) favors the removal of CO(ads) on the nearby Pt by providing OH(ads) species at low potentials. The present work suggests that the Pt(3)Sn@u-SnO(2) is indeed a unique kind of efficient electrocatalyst for alcohol electrooxidation.
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spelling pubmed-94198622022-09-20 Pt(3)Sn nanoparticles enriched with SnO(2)/Pt(3)Sn interfaces for highly efficient alcohol electrooxidation Wang, Zichen Wang, Liang Zhu, Wangbin Zeng, Tang Wu, Wei Lei, Zhao Tan, Yangyang Lv, Haifeng Cheng, Niancai Nanoscale Adv Chemistry Pt(3)Sn nanoparticles (NPs) enriched with Pt(3)Sn/ultra-small SnO(2) interfaces (Pt(3)Sn@u-SnO(2)/NG) were synthesized through a thermal treatment of Pt(2)Sn/NG in a H(2) atmosphere, followed by annealing under H(2) and air conditions. The unique structure of Pt(3)Sn NPs enriched with Pt(3)Sn/SnO(2) interfaces was observed on the Pt(3)Sn@u-SnO(2)/NG catalyst based on HRTEM. The optimized Pt(3)Sn@u-SnO(2)/NG catalyst achieves high catalytic activity with an ethanol oxidation reaction (EOR) activity of 366 mA mg(Pt)(−1) and a methanol oxidation reaction (MOR) activity of 503 mA mg(Pt)(−1) at the potential of 0.7 V, which are eight-fold and five-fold higher than those for the commercial Pt/C catalyst (44 and 99 mA mg(Pt)(−1), respectively). The Pt(3)Sn@u-SnO(2)/NG catalyst is found to be 3 times more stable and have higher CO tolerance than Pt/C. The outstanding performance of the Pt(3)Sn@u-SnO(2)/NG catalyst should be ascribed to the synergetic effect induced by the unique structure of Pt(3)Sn NPs enriched with Pt(3)Sn/SnO(2) interfaces. The synergetic effect between Pt(3)Sn NPs and ultra-small SnO(2) increases the performance for alcohol oxidation because the Sn in both Pt(3)Sn and SnO(2) favors the removal of CO(ads) on the nearby Pt by providing OH(ads) species at low potentials. The present work suggests that the Pt(3)Sn@u-SnO(2) is indeed a unique kind of efficient electrocatalyst for alcohol electrooxidation. RSC 2021-07-03 /pmc/articles/PMC9419862/ /pubmed/36132342 http://dx.doi.org/10.1039/d1na00314c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Wang, Zichen
Wang, Liang
Zhu, Wangbin
Zeng, Tang
Wu, Wei
Lei, Zhao
Tan, Yangyang
Lv, Haifeng
Cheng, Niancai
Pt(3)Sn nanoparticles enriched with SnO(2)/Pt(3)Sn interfaces for highly efficient alcohol electrooxidation
title Pt(3)Sn nanoparticles enriched with SnO(2)/Pt(3)Sn interfaces for highly efficient alcohol electrooxidation
title_full Pt(3)Sn nanoparticles enriched with SnO(2)/Pt(3)Sn interfaces for highly efficient alcohol electrooxidation
title_fullStr Pt(3)Sn nanoparticles enriched with SnO(2)/Pt(3)Sn interfaces for highly efficient alcohol electrooxidation
title_full_unstemmed Pt(3)Sn nanoparticles enriched with SnO(2)/Pt(3)Sn interfaces for highly efficient alcohol electrooxidation
title_short Pt(3)Sn nanoparticles enriched with SnO(2)/Pt(3)Sn interfaces for highly efficient alcohol electrooxidation
title_sort pt(3)sn nanoparticles enriched with sno(2)/pt(3)sn interfaces for highly efficient alcohol electrooxidation
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9419862/
https://www.ncbi.nlm.nih.gov/pubmed/36132342
http://dx.doi.org/10.1039/d1na00314c
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