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Topological self-template directed synthesis of multi-shelled intermetallic Ni(3)Ga hollow microspheres for the selective hydrogenation of alkyne

Multi-shelled hollow structured materials featuring large void volumes and high specific surface areas are very promising for a variety of applications. However, controllable synthesis of multi-shelled hollow structured intermetallic compounds remains a formidable challenge due to the high annealing...

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Autores principales: Hu, Mingzhen, Yang, Wenjuan, Liu, Shoujie, Zhu, Wei, Li, Yang, Hu, Botao, Chen, Zheng, Shen, Rongan, Cheong, Weng-Chon, Wang, Yu, Zhou, Kebin, Peng, Qing, Chen, Chen, Li, Yadong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6334720/
https://www.ncbi.nlm.nih.gov/pubmed/30746103
http://dx.doi.org/10.1039/c8sc03178a
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author Hu, Mingzhen
Yang, Wenjuan
Liu, Shoujie
Zhu, Wei
Li, Yang
Hu, Botao
Chen, Zheng
Shen, Rongan
Cheong, Weng-Chon
Wang, Yu
Zhou, Kebin
Peng, Qing
Chen, Chen
Li, Yadong
author_facet Hu, Mingzhen
Yang, Wenjuan
Liu, Shoujie
Zhu, Wei
Li, Yang
Hu, Botao
Chen, Zheng
Shen, Rongan
Cheong, Weng-Chon
Wang, Yu
Zhou, Kebin
Peng, Qing
Chen, Chen
Li, Yadong
author_sort Hu, Mingzhen
collection PubMed
description Multi-shelled hollow structured materials featuring large void volumes and high specific surface areas are very promising for a variety of applications. However, controllable synthesis of multi-shelled hollow structured intermetallic compounds remains a formidable challenge due to the high annealing temperature commonly required for the formation of intermetallic phases. Here, a topological self-template strategy was developed to solve this problem. Using this strategy, we prepared well-defined multi-shelled intermetallic Ni(3)Ga hollow microspheres (Ni(3)Ga-MIHMs) as disclosed by the HAADF-STEM, HRTEM, and EDS characterizations, and the BET specific surface areas of them measured as much as 153.4 m(2) g(–1). XRD and EXAFS spectral characterizations revealed the atomically ordered intermetallic phase nature of the Ni(3)Ga-MIHMs. The selective hydrogenation of acetylene catalytic evaluation results further demonstrated excellent catalytic properties of the Ni(3)Ga-MIHMs, which results from the more energetically facile reaction pathway for acetylene hydrogenation and ethylene desorption over it as revealed by DFT calculations. Besides, this strategy is also extendable to synthesize other multi-shelled intermetallic Ni(3)Sn(4) hollow microspheres, and is expected to open up new opportunities for rational design and preparation of novel structured and highly efficient intermetallics.
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spelling pubmed-63347202019-02-11 Topological self-template directed synthesis of multi-shelled intermetallic Ni(3)Ga hollow microspheres for the selective hydrogenation of alkyne Hu, Mingzhen Yang, Wenjuan Liu, Shoujie Zhu, Wei Li, Yang Hu, Botao Chen, Zheng Shen, Rongan Cheong, Weng-Chon Wang, Yu Zhou, Kebin Peng, Qing Chen, Chen Li, Yadong Chem Sci Chemistry Multi-shelled hollow structured materials featuring large void volumes and high specific surface areas are very promising for a variety of applications. However, controllable synthesis of multi-shelled hollow structured intermetallic compounds remains a formidable challenge due to the high annealing temperature commonly required for the formation of intermetallic phases. Here, a topological self-template strategy was developed to solve this problem. Using this strategy, we prepared well-defined multi-shelled intermetallic Ni(3)Ga hollow microspheres (Ni(3)Ga-MIHMs) as disclosed by the HAADF-STEM, HRTEM, and EDS characterizations, and the BET specific surface areas of them measured as much as 153.4 m(2) g(–1). XRD and EXAFS spectral characterizations revealed the atomically ordered intermetallic phase nature of the Ni(3)Ga-MIHMs. The selective hydrogenation of acetylene catalytic evaluation results further demonstrated excellent catalytic properties of the Ni(3)Ga-MIHMs, which results from the more energetically facile reaction pathway for acetylene hydrogenation and ethylene desorption over it as revealed by DFT calculations. Besides, this strategy is also extendable to synthesize other multi-shelled intermetallic Ni(3)Sn(4) hollow microspheres, and is expected to open up new opportunities for rational design and preparation of novel structured and highly efficient intermetallics. Royal Society of Chemistry 2018-10-19 /pmc/articles/PMC6334720/ /pubmed/30746103 http://dx.doi.org/10.1039/c8sc03178a Text en This journal is © The Royal Society of Chemistry 2019 https://creativecommons.org/licenses/by-nc/3.0/This article is freely available. This article is licensed under a Creative Commons Attribution Non Commercial 3.0 Unported Licence (CC BY-NC 3.0)
spellingShingle Chemistry
Hu, Mingzhen
Yang, Wenjuan
Liu, Shoujie
Zhu, Wei
Li, Yang
Hu, Botao
Chen, Zheng
Shen, Rongan
Cheong, Weng-Chon
Wang, Yu
Zhou, Kebin
Peng, Qing
Chen, Chen
Li, Yadong
Topological self-template directed synthesis of multi-shelled intermetallic Ni(3)Ga hollow microspheres for the selective hydrogenation of alkyne
title Topological self-template directed synthesis of multi-shelled intermetallic Ni(3)Ga hollow microspheres for the selective hydrogenation of alkyne
title_full Topological self-template directed synthesis of multi-shelled intermetallic Ni(3)Ga hollow microspheres for the selective hydrogenation of alkyne
title_fullStr Topological self-template directed synthesis of multi-shelled intermetallic Ni(3)Ga hollow microspheres for the selective hydrogenation of alkyne
title_full_unstemmed Topological self-template directed synthesis of multi-shelled intermetallic Ni(3)Ga hollow microspheres for the selective hydrogenation of alkyne
title_short Topological self-template directed synthesis of multi-shelled intermetallic Ni(3)Ga hollow microspheres for the selective hydrogenation of alkyne
title_sort topological self-template directed synthesis of multi-shelled intermetallic ni(3)ga hollow microspheres for the selective hydrogenation of alkyne
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6334720/
https://www.ncbi.nlm.nih.gov/pubmed/30746103
http://dx.doi.org/10.1039/c8sc03178a
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