Cargando…

Te-induced fabrication of Pt(3)PdTe(0.2) alloy nanocages by the self-diffusion of Pd atoms with unique MOR electrocatalytic performance

The key to the application of direct methanol fuel cells is to improve the activity and durability of Pt-based catalysts. Based on the upshift of the d-band centre and exposure to more Pt active sites, Pt(3)PdTe(0.2) catalysts with significantly enhanced electrocatalytic performance for the methanol...

Descripción completa

Detalles Bibliográficos
Autores principales: Shi, Yuhe, Zhang, Ling, Zhou, Huiwen, Liu, Ruanshan, Nie, Shichen, Ye, Guojie, Wu, Fengxia, Niu, Wenxin, Han, Jing Long, Wang, Ai Jie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10187029/
https://www.ncbi.nlm.nih.gov/pubmed/37205282
http://dx.doi.org/10.1039/d2na00576j
_version_ 1785042673399234560
author Shi, Yuhe
Zhang, Ling
Zhou, Huiwen
Liu, Ruanshan
Nie, Shichen
Ye, Guojie
Wu, Fengxia
Niu, Wenxin
Han, Jing Long
Wang, Ai Jie
author_facet Shi, Yuhe
Zhang, Ling
Zhou, Huiwen
Liu, Ruanshan
Nie, Shichen
Ye, Guojie
Wu, Fengxia
Niu, Wenxin
Han, Jing Long
Wang, Ai Jie
author_sort Shi, Yuhe
collection PubMed
description The key to the application of direct methanol fuel cells is to improve the activity and durability of Pt-based catalysts. Based on the upshift of the d-band centre and exposure to more Pt active sites, Pt(3)PdTe(0.2) catalysts with significantly enhanced electrocatalytic performance for the methanol oxidation reaction (MOR) were designed in this study. A series of different Pt(3)PdTe(x) (x = 0.2, 0.35, and 0.4) alloy nanocages with hollow and hierarchical structures were synthesized using cubic Pd nanoparticles as sacrificial templates and PtCl(6)(2−) and TeO(3)(2−) metal precursors as oxidative etching agents. The Pd nanocubes were oxidized into an ionic complex, which was further co-reduced with Pt and Te precursors by reducing agents to form the hollow Pt(3)PdTe(x) alloy nanocages with a face-centred cubic lattice. The sizes of the nanocages were around 30–40 nm, which were larger than the Pd templates (18 nm) and the thicknesses of the walls were 7–9 nm. The Pt(3)PdTe(0.2) alloy nanocages exhibited the highest catalytic activities and stabilities toward the MOR after electrochemical activation in sulfuric acid solution. CO-stripping tests suggested the enhanced CO-tolerant ability due to the doping of Te. The specific activity of Pt(3)PdTe(0.2) for the MOR reached 2.71 mA cm(−2) in acidic conditions, which was higher than those of Pd@Pt core–shell and PtPd(1.5) alloy nanoparticles and commercial Pt/C. A DMFC with Pt(3)PdTe(0.2) as the anodic catalyst output a higher power density by 2.6 times than that of commercial Pt/C, demonstrating its practicable application in clean energy conversions. Density functional theory (DFT) confirmed that the alloyed Te atoms altered the electron distributions of Pt(3)PdTe(0.2), which could lower the Gibbs free energy of the rate-determining methanol dehydrogenation step and greatly improve the MOR catalytic activity and durability.
format Online
Article
Text
id pubmed-10187029
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher RSC
record_format MEDLINE/PubMed
spelling pubmed-101870292023-05-17 Te-induced fabrication of Pt(3)PdTe(0.2) alloy nanocages by the self-diffusion of Pd atoms with unique MOR electrocatalytic performance Shi, Yuhe Zhang, Ling Zhou, Huiwen Liu, Ruanshan Nie, Shichen Ye, Guojie Wu, Fengxia Niu, Wenxin Han, Jing Long Wang, Ai Jie Nanoscale Adv Chemistry The key to the application of direct methanol fuel cells is to improve the activity and durability of Pt-based catalysts. Based on the upshift of the d-band centre and exposure to more Pt active sites, Pt(3)PdTe(0.2) catalysts with significantly enhanced electrocatalytic performance for the methanol oxidation reaction (MOR) were designed in this study. A series of different Pt(3)PdTe(x) (x = 0.2, 0.35, and 0.4) alloy nanocages with hollow and hierarchical structures were synthesized using cubic Pd nanoparticles as sacrificial templates and PtCl(6)(2−) and TeO(3)(2−) metal precursors as oxidative etching agents. The Pd nanocubes were oxidized into an ionic complex, which was further co-reduced with Pt and Te precursors by reducing agents to form the hollow Pt(3)PdTe(x) alloy nanocages with a face-centred cubic lattice. The sizes of the nanocages were around 30–40 nm, which were larger than the Pd templates (18 nm) and the thicknesses of the walls were 7–9 nm. The Pt(3)PdTe(0.2) alloy nanocages exhibited the highest catalytic activities and stabilities toward the MOR after electrochemical activation in sulfuric acid solution. CO-stripping tests suggested the enhanced CO-tolerant ability due to the doping of Te. The specific activity of Pt(3)PdTe(0.2) for the MOR reached 2.71 mA cm(−2) in acidic conditions, which was higher than those of Pd@Pt core–shell and PtPd(1.5) alloy nanoparticles and commercial Pt/C. A DMFC with Pt(3)PdTe(0.2) as the anodic catalyst output a higher power density by 2.6 times than that of commercial Pt/C, demonstrating its practicable application in clean energy conversions. Density functional theory (DFT) confirmed that the alloyed Te atoms altered the electron distributions of Pt(3)PdTe(0.2), which could lower the Gibbs free energy of the rate-determining methanol dehydrogenation step and greatly improve the MOR catalytic activity and durability. RSC 2023-04-25 /pmc/articles/PMC10187029/ /pubmed/37205282 http://dx.doi.org/10.1039/d2na00576j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Shi, Yuhe
Zhang, Ling
Zhou, Huiwen
Liu, Ruanshan
Nie, Shichen
Ye, Guojie
Wu, Fengxia
Niu, Wenxin
Han, Jing Long
Wang, Ai Jie
Te-induced fabrication of Pt(3)PdTe(0.2) alloy nanocages by the self-diffusion of Pd atoms with unique MOR electrocatalytic performance
title Te-induced fabrication of Pt(3)PdTe(0.2) alloy nanocages by the self-diffusion of Pd atoms with unique MOR electrocatalytic performance
title_full Te-induced fabrication of Pt(3)PdTe(0.2) alloy nanocages by the self-diffusion of Pd atoms with unique MOR electrocatalytic performance
title_fullStr Te-induced fabrication of Pt(3)PdTe(0.2) alloy nanocages by the self-diffusion of Pd atoms with unique MOR electrocatalytic performance
title_full_unstemmed Te-induced fabrication of Pt(3)PdTe(0.2) alloy nanocages by the self-diffusion of Pd atoms with unique MOR electrocatalytic performance
title_short Te-induced fabrication of Pt(3)PdTe(0.2) alloy nanocages by the self-diffusion of Pd atoms with unique MOR electrocatalytic performance
title_sort te-induced fabrication of pt(3)pdte(0.2) alloy nanocages by the self-diffusion of pd atoms with unique mor electrocatalytic performance
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10187029/
https://www.ncbi.nlm.nih.gov/pubmed/37205282
http://dx.doi.org/10.1039/d2na00576j
work_keys_str_mv AT shiyuhe teinducedfabricationofpt3pdte02alloynanocagesbytheselfdiffusionofpdatomswithuniquemorelectrocatalyticperformance
AT zhangling teinducedfabricationofpt3pdte02alloynanocagesbytheselfdiffusionofpdatomswithuniquemorelectrocatalyticperformance
AT zhouhuiwen teinducedfabricationofpt3pdte02alloynanocagesbytheselfdiffusionofpdatomswithuniquemorelectrocatalyticperformance
AT liuruanshan teinducedfabricationofpt3pdte02alloynanocagesbytheselfdiffusionofpdatomswithuniquemorelectrocatalyticperformance
AT nieshichen teinducedfabricationofpt3pdte02alloynanocagesbytheselfdiffusionofpdatomswithuniquemorelectrocatalyticperformance
AT yeguojie teinducedfabricationofpt3pdte02alloynanocagesbytheselfdiffusionofpdatomswithuniquemorelectrocatalyticperformance
AT wufengxia teinducedfabricationofpt3pdte02alloynanocagesbytheselfdiffusionofpdatomswithuniquemorelectrocatalyticperformance
AT niuwenxin teinducedfabricationofpt3pdte02alloynanocagesbytheselfdiffusionofpdatomswithuniquemorelectrocatalyticperformance
AT hanjinglong teinducedfabricationofpt3pdte02alloynanocagesbytheselfdiffusionofpdatomswithuniquemorelectrocatalyticperformance
AT wangaijie teinducedfabricationofpt3pdte02alloynanocagesbytheselfdiffusionofpdatomswithuniquemorelectrocatalyticperformance