Modification and hydrogen evolution characteristics of post-processing PtCu/C alloy solid solubility gradient membrane catalyst

PtCu/C membrane catalysts were prepared by ion beam sputtering (IBS) with moving bimetallic Pt and Cu targets. The surface structure of the catalyst with large specific surface area was obtained by surface etching of the gradient membrane with 1mol/L HNO<sub>3</sub>. The results of X-ray...

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Main Authors: WEI Bai-guang, HAO Xin-yu
Format: Article
Language:zho
Published: Journal of Materials Engineering 2019-11-01
Series:Journal of Materials Engineering
Subjects:
Online Access:http://jme.biam.ac.cn/CN/Y2019/V47/I11/107
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spelling doaj-0b53a32fa82a485baa50bf68c0a0ba072020-11-25T01:53:41ZzhoJournal of Materials EngineeringJournal of Materials Engineering1001-43811001-43812019-11-01471110711410.11868/j.issn.1001-4381.2018.001256201911001256Modification and hydrogen evolution characteristics of post-processing PtCu/C alloy solid solubility gradient membrane catalystWEI Bai-guang0HAO Xin-yu1Jilin Institute of Chemical Technology, Jilin 132022, Jilin, ChinaIntegration of Production and Education and Innovation and Entrepreneurship Center, Hezhou University, Hezhou 542899, Guangxi, ChinaPtCu/C membrane catalysts were prepared by ion beam sputtering (IBS) with moving bimetallic Pt and Cu targets. The surface structure of the catalyst with large specific surface area was obtained by surface etching of the gradient membrane with 1mol/L HNO<sub>3</sub>. The results of X-ray diffraction (XRD) analysis show that the PtCu replacement solid solution alloy is formed on the surface of the composite membrane electrode, the original Pt lattice is contracted and the spacing between the crystal planes is narrowed. Atomic force microscopy (AFM) and high resolution transmission electron microscopy (HRTEM) RTEM-STEM measurements show that the surface of the post-processed samples has multi-peak structure and trench-pore structure. Cyclic voltammetry (CV) and linear sweep voltammetry (LSV) were used to test the electrochemical hydrogen evolution performance of the samples. The results show that the dealloying of gradient materials can effectively reduce the platinum loading and improve the exchange current density of electrochemical hydrogen evolution. The Pt loading of the post-treatment sample is decreased by 20.29%, the exchange current density of electrochemical hydrogen evolution reaches 0.004217A/cm<sup>2</sup>, and the catalytic performance is improved by 20.58%.http://jme.biam.ac.cn/CN/Y2019/V47/I11/107ion beam sputteringgradient filmcatalystptcu/c
collection DOAJ
language zho
format Article
sources DOAJ
author WEI Bai-guang
HAO Xin-yu
spellingShingle WEI Bai-guang
HAO Xin-yu
Modification and hydrogen evolution characteristics of post-processing PtCu/C alloy solid solubility gradient membrane catalyst
Journal of Materials Engineering
ion beam sputtering
gradient film
catalyst
ptcu/c
author_facet WEI Bai-guang
HAO Xin-yu
author_sort WEI Bai-guang
title Modification and hydrogen evolution characteristics of post-processing PtCu/C alloy solid solubility gradient membrane catalyst
title_short Modification and hydrogen evolution characteristics of post-processing PtCu/C alloy solid solubility gradient membrane catalyst
title_full Modification and hydrogen evolution characteristics of post-processing PtCu/C alloy solid solubility gradient membrane catalyst
title_fullStr Modification and hydrogen evolution characteristics of post-processing PtCu/C alloy solid solubility gradient membrane catalyst
title_full_unstemmed Modification and hydrogen evolution characteristics of post-processing PtCu/C alloy solid solubility gradient membrane catalyst
title_sort modification and hydrogen evolution characteristics of post-processing ptcu/c alloy solid solubility gradient membrane catalyst
publisher Journal of Materials Engineering
series Journal of Materials Engineering
issn 1001-4381
1001-4381
publishDate 2019-11-01
description PtCu/C membrane catalysts were prepared by ion beam sputtering (IBS) with moving bimetallic Pt and Cu targets. The surface structure of the catalyst with large specific surface area was obtained by surface etching of the gradient membrane with 1mol/L HNO<sub>3</sub>. The results of X-ray diffraction (XRD) analysis show that the PtCu replacement solid solution alloy is formed on the surface of the composite membrane electrode, the original Pt lattice is contracted and the spacing between the crystal planes is narrowed. Atomic force microscopy (AFM) and high resolution transmission electron microscopy (HRTEM) RTEM-STEM measurements show that the surface of the post-processed samples has multi-peak structure and trench-pore structure. Cyclic voltammetry (CV) and linear sweep voltammetry (LSV) were used to test the electrochemical hydrogen evolution performance of the samples. The results show that the dealloying of gradient materials can effectively reduce the platinum loading and improve the exchange current density of electrochemical hydrogen evolution. The Pt loading of the post-treatment sample is decreased by 20.29%, the exchange current density of electrochemical hydrogen evolution reaches 0.004217A/cm<sup>2</sup>, and the catalytic performance is improved by 20.58%.
topic ion beam sputtering
gradient film
catalyst
ptcu/c
url http://jme.biam.ac.cn/CN/Y2019/V47/I11/107
work_keys_str_mv AT weibaiguang modificationandhydrogenevolutioncharacteristicsofpostprocessingptcucalloysolidsolubilitygradientmembranecatalyst
AT haoxinyu modificationandhydrogenevolutioncharacteristicsofpostprocessingptcucalloysolidsolubilitygradientmembranecatalyst
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