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Inverse correlation between quasiparticle mass and T(c) in a cuprate high-T(c) superconductor

Close to a zero-temperature transition between ordered and disordered electronic phases, quantum fluctuations can lead to a strong enhancement of electron mass and to the emergence of competing phases such as superconductivity. A correlation between the existence of such a quantum phase transition a...

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Autores principales: Putzke, Carsten, Malone, Liam, Badoux, Sven, Vignolle, Baptiste, Vignolles, David, Tabis, Wojciech, Walmsley, Philip, Bird, Matthew, Hussey, Nigel E., Proust, Cyril, Carrington, Antony
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for the Advancement of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4803492/
https://www.ncbi.nlm.nih.gov/pubmed/27034989
http://dx.doi.org/10.1126/sciadv.1501657
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author Putzke, Carsten
Malone, Liam
Badoux, Sven
Vignolle, Baptiste
Vignolles, David
Tabis, Wojciech
Walmsley, Philip
Bird, Matthew
Hussey, Nigel E.
Proust, Cyril
Carrington, Antony
author_facet Putzke, Carsten
Malone, Liam
Badoux, Sven
Vignolle, Baptiste
Vignolles, David
Tabis, Wojciech
Walmsley, Philip
Bird, Matthew
Hussey, Nigel E.
Proust, Cyril
Carrington, Antony
author_sort Putzke, Carsten
collection PubMed
description Close to a zero-temperature transition between ordered and disordered electronic phases, quantum fluctuations can lead to a strong enhancement of electron mass and to the emergence of competing phases such as superconductivity. A correlation between the existence of such a quantum phase transition and superconductivity is quite well established in some heavy fermion and iron-based superconductors, and there have been suggestions that high-temperature superconductivity in copper-oxide materials (cuprates) may also be driven by the same mechanism. Close to optimal doping, where the superconducting transition temperature T(c) is maximal in cuprates, two different phases are known to compete with superconductivity: a poorly understood pseudogap phase and a charge-ordered phase. Recent experiments have shown a strong increase in quasiparticle mass m* in the cuprate YBa(2)Cu(3)O(7-δ) as optimal doping is approached, suggesting that quantum fluctuations of the charge-ordered phase may be responsible for the high-T(c) superconductivity. We have tested the robustness of this correlation between m* and T(c) by performing quantum oscillation studies on the stoichiometric compound YBa(2)Cu(4)O(8) under hydrostatic pressure. In contrast to the results for YBa(2)Cu(3)O(7-δ), we find that in YBa(2)Cu(4)O(8), the mass decreases as T(c) increases under pressure. This inverse correlation between m* and T(c) suggests that quantum fluctuations of the charge order enhance m* but do not enhance T(c).
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spelling pubmed-48034922016-03-31 Inverse correlation between quasiparticle mass and T(c) in a cuprate high-T(c) superconductor Putzke, Carsten Malone, Liam Badoux, Sven Vignolle, Baptiste Vignolles, David Tabis, Wojciech Walmsley, Philip Bird, Matthew Hussey, Nigel E. Proust, Cyril Carrington, Antony Sci Adv Research Articles Close to a zero-temperature transition between ordered and disordered electronic phases, quantum fluctuations can lead to a strong enhancement of electron mass and to the emergence of competing phases such as superconductivity. A correlation between the existence of such a quantum phase transition and superconductivity is quite well established in some heavy fermion and iron-based superconductors, and there have been suggestions that high-temperature superconductivity in copper-oxide materials (cuprates) may also be driven by the same mechanism. Close to optimal doping, where the superconducting transition temperature T(c) is maximal in cuprates, two different phases are known to compete with superconductivity: a poorly understood pseudogap phase and a charge-ordered phase. Recent experiments have shown a strong increase in quasiparticle mass m* in the cuprate YBa(2)Cu(3)O(7-δ) as optimal doping is approached, suggesting that quantum fluctuations of the charge-ordered phase may be responsible for the high-T(c) superconductivity. We have tested the robustness of this correlation between m* and T(c) by performing quantum oscillation studies on the stoichiometric compound YBa(2)Cu(4)O(8) under hydrostatic pressure. In contrast to the results for YBa(2)Cu(3)O(7-δ), we find that in YBa(2)Cu(4)O(8), the mass decreases as T(c) increases under pressure. This inverse correlation between m* and T(c) suggests that quantum fluctuations of the charge order enhance m* but do not enhance T(c). American Association for the Advancement of Science 2016-03-18 /pmc/articles/PMC4803492/ /pubmed/27034989 http://dx.doi.org/10.1126/sciadv.1501657 Text en Copyright © 2016, The Authors http://creativecommons.org/licenses/by-nc/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCommercial license (http://creativecommons.org/licenses/by-nc/4.0/) , which permits use, distribution, and reproduction in any medium, so long as the resultant use is not for commercial advantage and provided the original work is properly cited.
spellingShingle Research Articles
Putzke, Carsten
Malone, Liam
Badoux, Sven
Vignolle, Baptiste
Vignolles, David
Tabis, Wojciech
Walmsley, Philip
Bird, Matthew
Hussey, Nigel E.
Proust, Cyril
Carrington, Antony
Inverse correlation between quasiparticle mass and T(c) in a cuprate high-T(c) superconductor
title Inverse correlation between quasiparticle mass and T(c) in a cuprate high-T(c) superconductor
title_full Inverse correlation between quasiparticle mass and T(c) in a cuprate high-T(c) superconductor
title_fullStr Inverse correlation between quasiparticle mass and T(c) in a cuprate high-T(c) superconductor
title_full_unstemmed Inverse correlation between quasiparticle mass and T(c) in a cuprate high-T(c) superconductor
title_short Inverse correlation between quasiparticle mass and T(c) in a cuprate high-T(c) superconductor
title_sort inverse correlation between quasiparticle mass and t(c) in a cuprate high-t(c) superconductor
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4803492/
https://www.ncbi.nlm.nih.gov/pubmed/27034989
http://dx.doi.org/10.1126/sciadv.1501657
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