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Elemental Substitution at Tl Site of Tl(1−x)X(x)(Ba, Sr)CaCu(2)O(7) Superconductor with X = Cr, Bi, Pb, Se, and Te

The effects of elemental substitutions at the Tl site of a Tl(1−x)X(x)(Ba, Sr)CaCu(2)O(7) superconductor with X = Cr, Bi, Pb, Se, and Te were investigated. This study aimed to determine the elements that enhance and suppress the superconducting transition temperature of the Tl(1−x)X(x)(Ba, Sr)CaCu(2...

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Autores principales: Nur-Akasyah, Jaafar, Abd-Shukor, Roslan, Chong, Tet Vui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10254884/
https://www.ncbi.nlm.nih.gov/pubmed/37297156
http://dx.doi.org/10.3390/ma16114022
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author Nur-Akasyah, Jaafar
Abd-Shukor, Roslan
Chong, Tet Vui
author_facet Nur-Akasyah, Jaafar
Abd-Shukor, Roslan
Chong, Tet Vui
author_sort Nur-Akasyah, Jaafar
collection PubMed
description The effects of elemental substitutions at the Tl site of a Tl(1−x)X(x)(Ba, Sr)CaCu(2)O(7) superconductor with X = Cr, Bi, Pb, Se, and Te were investigated. This study aimed to determine the elements that enhance and suppress the superconducting transition temperature of the Tl(1−x)X(x)(Ba, Sr)CaCu(2)O(7) (Tl-1212) phase. The selected elements belong to the groups of transition metal, post-transition metal, non-metal, and metalloid. The relationship between the transition temperature and ionic radius of the elements was also discussed. The samples were prepared by the solid-state reaction method. The XRD patterns showed a single Tl-1212 phase was formed in the non- and Cr-substituted (x = 0.15) samples. The Cr-substituted samples (x = 0.4) showed a plate-like structure with smaller voids. The highest superconducting transition temperatures (T(c onset), T(cχ′), and T(p)) were also achieved by the Cr-substituted samples for x = 0.4 compositions. However, the substitution of Te suppressed the superconductivity of the Tl-1212 phase. J(c inter) (T(p)) for all samples was calculated to be in the range of 12–17 A/cm(2). This work shows that substitution elements with a smaller ionic radius tend to be more favorable in improving the superconducting properties of the Tl-1212 phase.
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spelling pubmed-102548842023-06-10 Elemental Substitution at Tl Site of Tl(1−x)X(x)(Ba, Sr)CaCu(2)O(7) Superconductor with X = Cr, Bi, Pb, Se, and Te Nur-Akasyah, Jaafar Abd-Shukor, Roslan Chong, Tet Vui Materials (Basel) Article The effects of elemental substitutions at the Tl site of a Tl(1−x)X(x)(Ba, Sr)CaCu(2)O(7) superconductor with X = Cr, Bi, Pb, Se, and Te were investigated. This study aimed to determine the elements that enhance and suppress the superconducting transition temperature of the Tl(1−x)X(x)(Ba, Sr)CaCu(2)O(7) (Tl-1212) phase. The selected elements belong to the groups of transition metal, post-transition metal, non-metal, and metalloid. The relationship between the transition temperature and ionic radius of the elements was also discussed. The samples were prepared by the solid-state reaction method. The XRD patterns showed a single Tl-1212 phase was formed in the non- and Cr-substituted (x = 0.15) samples. The Cr-substituted samples (x = 0.4) showed a plate-like structure with smaller voids. The highest superconducting transition temperatures (T(c onset), T(cχ′), and T(p)) were also achieved by the Cr-substituted samples for x = 0.4 compositions. However, the substitution of Te suppressed the superconductivity of the Tl-1212 phase. J(c inter) (T(p)) for all samples was calculated to be in the range of 12–17 A/cm(2). This work shows that substitution elements with a smaller ionic radius tend to be more favorable in improving the superconducting properties of the Tl-1212 phase. MDPI 2023-05-27 /pmc/articles/PMC10254884/ /pubmed/37297156 http://dx.doi.org/10.3390/ma16114022 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
Nur-Akasyah, Jaafar
Abd-Shukor, Roslan
Chong, Tet Vui
Elemental Substitution at Tl Site of Tl(1−x)X(x)(Ba, Sr)CaCu(2)O(7) Superconductor with X = Cr, Bi, Pb, Se, and Te
title Elemental Substitution at Tl Site of Tl(1−x)X(x)(Ba, Sr)CaCu(2)O(7) Superconductor with X = Cr, Bi, Pb, Se, and Te
title_full Elemental Substitution at Tl Site of Tl(1−x)X(x)(Ba, Sr)CaCu(2)O(7) Superconductor with X = Cr, Bi, Pb, Se, and Te
title_fullStr Elemental Substitution at Tl Site of Tl(1−x)X(x)(Ba, Sr)CaCu(2)O(7) Superconductor with X = Cr, Bi, Pb, Se, and Te
title_full_unstemmed Elemental Substitution at Tl Site of Tl(1−x)X(x)(Ba, Sr)CaCu(2)O(7) Superconductor with X = Cr, Bi, Pb, Se, and Te
title_short Elemental Substitution at Tl Site of Tl(1−x)X(x)(Ba, Sr)CaCu(2)O(7) Superconductor with X = Cr, Bi, Pb, Se, and Te
title_sort elemental substitution at tl site of tl(1−x)x(x)(ba, sr)cacu(2)o(7) superconductor with x = cr, bi, pb, se, and te
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10254884/
https://www.ncbi.nlm.nih.gov/pubmed/37297156
http://dx.doi.org/10.3390/ma16114022
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