Characterization of Ni3Sn intermetallic nanoparticles fabricated by thermal plasma process and catalytic properties for methanol decomposition

The intermetallic compound Ni3Sn has potential for application in hydrogen production as a catalyst. Herein, we synthesized Ni3Sn nanoparticles through a thermal plasma process. We characterized the nanoparticles by synchrotron radiation X-ray diffraction and transmission electron microscopy analyse...

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Main Authors: Ya Xu, Huixin Jin, Toshiyuki Hirano, Yoshitaka Matsushita, Jianxin Zhang
Format: Article
Language:English
Published: Taylor & Francis Group 2019-12-01
Series:Science and Technology of Advanced Materials
Subjects:
Online Access:http://dx.doi.org/10.1080/14686996.2019.1622447
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spelling doaj-09985554cf6b4cdeaf2ba477f0956a242020-11-25T03:45:56ZengTaylor & Francis GroupScience and Technology of Advanced Materials1468-69961878-55142019-12-0120162263110.1080/14686996.2019.16224471622447Characterization of Ni3Sn intermetallic nanoparticles fabricated by thermal plasma process and catalytic properties for methanol decompositionYa Xu0Huixin Jin1Toshiyuki Hirano2Yoshitaka Matsushita3Jianxin Zhang4National Institute for Materials ScienceShandong UniversityNational Institute for Materials ScienceNational Institute for Materials ScienceShandong UniversityThe intermetallic compound Ni3Sn has potential for application in hydrogen production as a catalyst. Herein, we synthesized Ni3Sn nanoparticles through a thermal plasma process. We characterized the nanoparticles by synchrotron radiation X-ray diffraction and transmission electron microscopy analyses, and analyzed their catalytic properties for methanol decomposition in a temperature range of 513 to 793 K. The Ni3Sn nanoparticles showed a higher selectivity to H2 and CO than pure Ni nanoparticles, but a relatively lower catalytic activity for methanol decomposition compared to pure Ni nanoparticles. Density functional theory calculations revealed that the activation energy barrier for CO dissociation on Ni3Sn (001) was 396 kJ/mol, which was higher than that for Ni (111). Moreover, the activation energy barrier for OH formation on Ni3Sn (001) was 229 kJ/mol, which was significantly higher than that for Ni (111). This supported the experimental results and confirmed that the Ni3Sn catalyst suppresses the formation of carbon and H2O, compared to Ni catalyst.http://dx.doi.org/10.1080/14686996.2019.1622447intermetallic compoundsni3snnanoparticlesmethanol decompositionthermal plasmahydrogen production
collection DOAJ
language English
format Article
sources DOAJ
author Ya Xu
Huixin Jin
Toshiyuki Hirano
Yoshitaka Matsushita
Jianxin Zhang
spellingShingle Ya Xu
Huixin Jin
Toshiyuki Hirano
Yoshitaka Matsushita
Jianxin Zhang
Characterization of Ni3Sn intermetallic nanoparticles fabricated by thermal plasma process and catalytic properties for methanol decomposition
Science and Technology of Advanced Materials
intermetallic compounds
ni3sn
nanoparticles
methanol decomposition
thermal plasma
hydrogen production
author_facet Ya Xu
Huixin Jin
Toshiyuki Hirano
Yoshitaka Matsushita
Jianxin Zhang
author_sort Ya Xu
title Characterization of Ni3Sn intermetallic nanoparticles fabricated by thermal plasma process and catalytic properties for methanol decomposition
title_short Characterization of Ni3Sn intermetallic nanoparticles fabricated by thermal plasma process and catalytic properties for methanol decomposition
title_full Characterization of Ni3Sn intermetallic nanoparticles fabricated by thermal plasma process and catalytic properties for methanol decomposition
title_fullStr Characterization of Ni3Sn intermetallic nanoparticles fabricated by thermal plasma process and catalytic properties for methanol decomposition
title_full_unstemmed Characterization of Ni3Sn intermetallic nanoparticles fabricated by thermal plasma process and catalytic properties for methanol decomposition
title_sort characterization of ni3sn intermetallic nanoparticles fabricated by thermal plasma process and catalytic properties for methanol decomposition
publisher Taylor & Francis Group
series Science and Technology of Advanced Materials
issn 1468-6996
1878-5514
publishDate 2019-12-01
description The intermetallic compound Ni3Sn has potential for application in hydrogen production as a catalyst. Herein, we synthesized Ni3Sn nanoparticles through a thermal plasma process. We characterized the nanoparticles by synchrotron radiation X-ray diffraction and transmission electron microscopy analyses, and analyzed their catalytic properties for methanol decomposition in a temperature range of 513 to 793 K. The Ni3Sn nanoparticles showed a higher selectivity to H2 and CO than pure Ni nanoparticles, but a relatively lower catalytic activity for methanol decomposition compared to pure Ni nanoparticles. Density functional theory calculations revealed that the activation energy barrier for CO dissociation on Ni3Sn (001) was 396 kJ/mol, which was higher than that for Ni (111). Moreover, the activation energy barrier for OH formation on Ni3Sn (001) was 229 kJ/mol, which was significantly higher than that for Ni (111). This supported the experimental results and confirmed that the Ni3Sn catalyst suppresses the formation of carbon and H2O, compared to Ni catalyst.
topic intermetallic compounds
ni3sn
nanoparticles
methanol decomposition
thermal plasma
hydrogen production
url http://dx.doi.org/10.1080/14686996.2019.1622447
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