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Influence of Amorphous Boron Grain Size, High Isostatic Pressure, Annealing Temperature, and Filling Density of Unreacted Material on Structure, Critical Parameters, n-Value, and Engineering Critical Current Density in MgB(2) Wires

Our results show that a lower density of unreacted Mg + B material during an Mg solid-state synthesis reaction leads to a significant reduction in the quantity of the superconducting phase and lowers the homogeneity of the superconducting material. It also significantly reduces the irreversible magn...

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Autores principales: Gajda, Daniel, Zaleski, Andrzej J., Morawski, Andrzej, Małecka, Małgorzata, Akdoğan, Mustafa, Karaboğa, Firat, Avcı, Doğan, Yetiş, Hakan, Belenli, Ibrahim, Czujko, Tomasz
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8269684/
https://www.ncbi.nlm.nih.gov/pubmed/34203230
http://dx.doi.org/10.3390/ma14133600
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author Gajda, Daniel
Zaleski, Andrzej J.
Morawski, Andrzej
Małecka, Małgorzata
Akdoğan, Mustafa
Karaboğa, Firat
Avcı, Doğan
Yetiş, Hakan
Belenli, Ibrahim
Czujko, Tomasz
author_facet Gajda, Daniel
Zaleski, Andrzej J.
Morawski, Andrzej
Małecka, Małgorzata
Akdoğan, Mustafa
Karaboğa, Firat
Avcı, Doğan
Yetiş, Hakan
Belenli, Ibrahim
Czujko, Tomasz
author_sort Gajda, Daniel
collection PubMed
description Our results show that a lower density of unreacted Mg + B material during an Mg solid-state synthesis reaction leads to a significant reduction in the quantity of the superconducting phase and lowers the homogeneity of the superconducting material. It also significantly reduces the irreversible magnetic field (B(irr)), critical temperature (T(c)), upper magnetic field (B(c2)), engineered critical current density (J(ec)), and n-value, despite high isostatic pressure (HIP) treatment and the use of nanoboron in the sample. Our measurements show that samples with large boron grains with an 8% higher density of unreacted Mg + B material allow better critical parameters to be achieved. Studies have shown that the density of unreacted material has little effect on B(irr), T(c), B(c2), J(ec), and the n-value for an Mg liquid-state synthesis reaction. The results show that the critical parameters during an Mg liquid-state synthesis reaction depend mainly on grain size. Nanoboron grains allow for the highest B(irr), T(c), B(c2), J(ec), and n-values. Scanning electron microscopy (SEM) images taken from the longitudinal sections of the wires show that the samples annealed under low isostatic pressure have a highly heterogeneous structure. High isostatic pressure heat treatment greatly improves the homogeneity of MgB(2).
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spelling pubmed-82696842021-07-10 Influence of Amorphous Boron Grain Size, High Isostatic Pressure, Annealing Temperature, and Filling Density of Unreacted Material on Structure, Critical Parameters, n-Value, and Engineering Critical Current Density in MgB(2) Wires Gajda, Daniel Zaleski, Andrzej J. Morawski, Andrzej Małecka, Małgorzata Akdoğan, Mustafa Karaboğa, Firat Avcı, Doğan Yetiş, Hakan Belenli, Ibrahim Czujko, Tomasz Materials (Basel) Article Our results show that a lower density of unreacted Mg + B material during an Mg solid-state synthesis reaction leads to a significant reduction in the quantity of the superconducting phase and lowers the homogeneity of the superconducting material. It also significantly reduces the irreversible magnetic field (B(irr)), critical temperature (T(c)), upper magnetic field (B(c2)), engineered critical current density (J(ec)), and n-value, despite high isostatic pressure (HIP) treatment and the use of nanoboron in the sample. Our measurements show that samples with large boron grains with an 8% higher density of unreacted Mg + B material allow better critical parameters to be achieved. Studies have shown that the density of unreacted material has little effect on B(irr), T(c), B(c2), J(ec), and the n-value for an Mg liquid-state synthesis reaction. The results show that the critical parameters during an Mg liquid-state synthesis reaction depend mainly on grain size. Nanoboron grains allow for the highest B(irr), T(c), B(c2), J(ec), and n-values. Scanning electron microscopy (SEM) images taken from the longitudinal sections of the wires show that the samples annealed under low isostatic pressure have a highly heterogeneous structure. High isostatic pressure heat treatment greatly improves the homogeneity of MgB(2). MDPI 2021-06-28 /pmc/articles/PMC8269684/ /pubmed/34203230 http://dx.doi.org/10.3390/ma14133600 Text en © 2021 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
Gajda, Daniel
Zaleski, Andrzej J.
Morawski, Andrzej
Małecka, Małgorzata
Akdoğan, Mustafa
Karaboğa, Firat
Avcı, Doğan
Yetiş, Hakan
Belenli, Ibrahim
Czujko, Tomasz
Influence of Amorphous Boron Grain Size, High Isostatic Pressure, Annealing Temperature, and Filling Density of Unreacted Material on Structure, Critical Parameters, n-Value, and Engineering Critical Current Density in MgB(2) Wires
title Influence of Amorphous Boron Grain Size, High Isostatic Pressure, Annealing Temperature, and Filling Density of Unreacted Material on Structure, Critical Parameters, n-Value, and Engineering Critical Current Density in MgB(2) Wires
title_full Influence of Amorphous Boron Grain Size, High Isostatic Pressure, Annealing Temperature, and Filling Density of Unreacted Material on Structure, Critical Parameters, n-Value, and Engineering Critical Current Density in MgB(2) Wires
title_fullStr Influence of Amorphous Boron Grain Size, High Isostatic Pressure, Annealing Temperature, and Filling Density of Unreacted Material on Structure, Critical Parameters, n-Value, and Engineering Critical Current Density in MgB(2) Wires
title_full_unstemmed Influence of Amorphous Boron Grain Size, High Isostatic Pressure, Annealing Temperature, and Filling Density of Unreacted Material on Structure, Critical Parameters, n-Value, and Engineering Critical Current Density in MgB(2) Wires
title_short Influence of Amorphous Boron Grain Size, High Isostatic Pressure, Annealing Temperature, and Filling Density of Unreacted Material on Structure, Critical Parameters, n-Value, and Engineering Critical Current Density in MgB(2) Wires
title_sort influence of amorphous boron grain size, high isostatic pressure, annealing temperature, and filling density of unreacted material on structure, critical parameters, n-value, and engineering critical current density in mgb(2) wires
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8269684/
https://www.ncbi.nlm.nih.gov/pubmed/34203230
http://dx.doi.org/10.3390/ma14133600
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