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Formation of Metal-Oxide Nanocomposites with Highly Dispersed Co Particles from a Co-Zr Powder Blend by Mechanical Alloying and Hydrogen Treatment

The use of metal powders produced by mechanical treatment in various fields, such as catalysis or gas absorption, is often limited by the low specific surface area of the resulting particles. One of the possible solutions for increasing the particle fineness is hydrogen treatment; however, its effec...

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Autores principales: Yakovlev, Ilya, Tikhov, Serguei, Gerasimov, Evgeny, Kardash, Tatiana, Valeev, Konstantin, Salanov, Aleksei, Chesalov, Yurii, Lapina, Olga, Lomovskii, Oleg, Dudina, Dina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9920757/
https://www.ncbi.nlm.nih.gov/pubmed/36770080
http://dx.doi.org/10.3390/ma16031074
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author Yakovlev, Ilya
Tikhov, Serguei
Gerasimov, Evgeny
Kardash, Tatiana
Valeev, Konstantin
Salanov, Aleksei
Chesalov, Yurii
Lapina, Olga
Lomovskii, Oleg
Dudina, Dina
author_facet Yakovlev, Ilya
Tikhov, Serguei
Gerasimov, Evgeny
Kardash, Tatiana
Valeev, Konstantin
Salanov, Aleksei
Chesalov, Yurii
Lapina, Olga
Lomovskii, Oleg
Dudina, Dina
author_sort Yakovlev, Ilya
collection PubMed
description The use of metal powders produced by mechanical treatment in various fields, such as catalysis or gas absorption, is often limited by the low specific surface area of the resulting particles. One of the possible solutions for increasing the particle fineness is hydrogen treatment; however, its effect on the structure of mechanically treated powders remains unexplored. In this work, for the first time, a metal-oxide nanocomposite powder was produced by mechanical alloying (MA) in a high-energy planetary ball mill from commercial powders of Zr and Co in the atomic ratio Co:Zr = 53:47 in an inert atmosphere, followed by high-pressure hydrogenation at room temperature. The initial powders and products of alloying and hydrogenation were studied by XRD, (59)Co Internal Field NMR, SEM, and HRTEM microscopy with EDX mapping, as well as Raman spectroscopy. MA resulted in significant amorphization of the powders, as well as extensive oxidation of zirconium by water according to the so-called “Fukushima effect”. Moreover, an increase in hcp Co sites was observed. (59)Co IF NMR spectra revealed the formation of magnetically single-domain cobalt particles after hydrogenation. The crystallite sizes remained unchanged, which was not observed earlier. The pulverization of Co and an increase in hcp Co sites made this nanocomposite suitable for the synthesis of promising Fischer–Tropsch catalysts.
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spelling pubmed-99207572023-02-12 Formation of Metal-Oxide Nanocomposites with Highly Dispersed Co Particles from a Co-Zr Powder Blend by Mechanical Alloying and Hydrogen Treatment Yakovlev, Ilya Tikhov, Serguei Gerasimov, Evgeny Kardash, Tatiana Valeev, Konstantin Salanov, Aleksei Chesalov, Yurii Lapina, Olga Lomovskii, Oleg Dudina, Dina Materials (Basel) Article The use of metal powders produced by mechanical treatment in various fields, such as catalysis or gas absorption, is often limited by the low specific surface area of the resulting particles. One of the possible solutions for increasing the particle fineness is hydrogen treatment; however, its effect on the structure of mechanically treated powders remains unexplored. In this work, for the first time, a metal-oxide nanocomposite powder was produced by mechanical alloying (MA) in a high-energy planetary ball mill from commercial powders of Zr and Co in the atomic ratio Co:Zr = 53:47 in an inert atmosphere, followed by high-pressure hydrogenation at room temperature. The initial powders and products of alloying and hydrogenation were studied by XRD, (59)Co Internal Field NMR, SEM, and HRTEM microscopy with EDX mapping, as well as Raman spectroscopy. MA resulted in significant amorphization of the powders, as well as extensive oxidation of zirconium by water according to the so-called “Fukushima effect”. Moreover, an increase in hcp Co sites was observed. (59)Co IF NMR spectra revealed the formation of magnetically single-domain cobalt particles after hydrogenation. The crystallite sizes remained unchanged, which was not observed earlier. The pulverization of Co and an increase in hcp Co sites made this nanocomposite suitable for the synthesis of promising Fischer–Tropsch catalysts. MDPI 2023-01-26 /pmc/articles/PMC9920757/ /pubmed/36770080 http://dx.doi.org/10.3390/ma16031074 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Yakovlev, Ilya
Tikhov, Serguei
Gerasimov, Evgeny
Kardash, Tatiana
Valeev, Konstantin
Salanov, Aleksei
Chesalov, Yurii
Lapina, Olga
Lomovskii, Oleg
Dudina, Dina
Formation of Metal-Oxide Nanocomposites with Highly Dispersed Co Particles from a Co-Zr Powder Blend by Mechanical Alloying and Hydrogen Treatment
title Formation of Metal-Oxide Nanocomposites with Highly Dispersed Co Particles from a Co-Zr Powder Blend by Mechanical Alloying and Hydrogen Treatment
title_full Formation of Metal-Oxide Nanocomposites with Highly Dispersed Co Particles from a Co-Zr Powder Blend by Mechanical Alloying and Hydrogen Treatment
title_fullStr Formation of Metal-Oxide Nanocomposites with Highly Dispersed Co Particles from a Co-Zr Powder Blend by Mechanical Alloying and Hydrogen Treatment
title_full_unstemmed Formation of Metal-Oxide Nanocomposites with Highly Dispersed Co Particles from a Co-Zr Powder Blend by Mechanical Alloying and Hydrogen Treatment
title_short Formation of Metal-Oxide Nanocomposites with Highly Dispersed Co Particles from a Co-Zr Powder Blend by Mechanical Alloying and Hydrogen Treatment
title_sort formation of metal-oxide nanocomposites with highly dispersed co particles from a co-zr powder blend by mechanical alloying and hydrogen treatment
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9920757/
https://www.ncbi.nlm.nih.gov/pubmed/36770080
http://dx.doi.org/10.3390/ma16031074
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