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Comparing Thickness and Doping-Induced Effects on the Normal States of Infinite-Layer Electron-Doped Cuprates: Is There Anything to Learn?

We grew Sr(1-x)La(x)CuO(2) thin films and SrCuO(2)/Sr(0.9)La(0.1)CuO(2)/SrCuO(2) trilayers by reflection high-energy diffraction-calibrated layer-by-layer molecular beam epitaxy, to study their electrical transport properties as a function of the doping and thickness of the central Sr(0.9)La(0.1)CuO...

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Autores principales: Sacco, Chiara, Galdi, Alice, Romeo, Francesco, Coppola, Nunzia, Orgiani, Pasquale, Wei, Haofei I., Shen, Kyle M., Schlom, Darrell G., Maritato, Luigi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9044742/
https://www.ncbi.nlm.nih.gov/pubmed/35407212
http://dx.doi.org/10.3390/nano12071092
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author Sacco, Chiara
Galdi, Alice
Romeo, Francesco
Coppola, Nunzia
Orgiani, Pasquale
Wei, Haofei I.
Shen, Kyle M.
Schlom, Darrell G.
Maritato, Luigi
author_facet Sacco, Chiara
Galdi, Alice
Romeo, Francesco
Coppola, Nunzia
Orgiani, Pasquale
Wei, Haofei I.
Shen, Kyle M.
Schlom, Darrell G.
Maritato, Luigi
author_sort Sacco, Chiara
collection PubMed
description We grew Sr(1-x)La(x)CuO(2) thin films and SrCuO(2)/Sr(0.9)La(0.1)CuO(2)/SrCuO(2) trilayers by reflection high-energy diffraction-calibrated layer-by-layer molecular beam epitaxy, to study their electrical transport properties as a function of the doping and thickness of the central Sr(0.9)La(0.1)CuO(2) layer. For the trilayer samples, as already observed in underdoped SLCO films, the electrical resistivity versus temperature curves as a function of the central layer thickness show, for thicknesses thinner than 20 unit cells, sudden upturns in the low temperature range with the possibility for identifying, in the normal state, the T* and a T** temperatures, respectively, separating high-temperature linear behavior and low-temperature quadratic dependence. By plotting the T* and T** values as a function of T(C)(onset) for both the thin films and the trilayers, the data fall on the same curves. This result suggests that, for the investigated trilayers, the superconducting critical temperature is the important parameter able to describe the normal state properties and that, in the limit of very thin central layers, such properties are mainly influenced by the modification of the energy band structure and not by interface-related disorder.
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spelling pubmed-90447422022-04-28 Comparing Thickness and Doping-Induced Effects on the Normal States of Infinite-Layer Electron-Doped Cuprates: Is There Anything to Learn? Sacco, Chiara Galdi, Alice Romeo, Francesco Coppola, Nunzia Orgiani, Pasquale Wei, Haofei I. Shen, Kyle M. Schlom, Darrell G. Maritato, Luigi Nanomaterials (Basel) Article We grew Sr(1-x)La(x)CuO(2) thin films and SrCuO(2)/Sr(0.9)La(0.1)CuO(2)/SrCuO(2) trilayers by reflection high-energy diffraction-calibrated layer-by-layer molecular beam epitaxy, to study their electrical transport properties as a function of the doping and thickness of the central Sr(0.9)La(0.1)CuO(2) layer. For the trilayer samples, as already observed in underdoped SLCO films, the electrical resistivity versus temperature curves as a function of the central layer thickness show, for thicknesses thinner than 20 unit cells, sudden upturns in the low temperature range with the possibility for identifying, in the normal state, the T* and a T** temperatures, respectively, separating high-temperature linear behavior and low-temperature quadratic dependence. By plotting the T* and T** values as a function of T(C)(onset) for both the thin films and the trilayers, the data fall on the same curves. This result suggests that, for the investigated trilayers, the superconducting critical temperature is the important parameter able to describe the normal state properties and that, in the limit of very thin central layers, such properties are mainly influenced by the modification of the energy band structure and not by interface-related disorder. MDPI 2022-03-26 /pmc/articles/PMC9044742/ /pubmed/35407212 http://dx.doi.org/10.3390/nano12071092 Text en © 2022 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
Sacco, Chiara
Galdi, Alice
Romeo, Francesco
Coppola, Nunzia
Orgiani, Pasquale
Wei, Haofei I.
Shen, Kyle M.
Schlom, Darrell G.
Maritato, Luigi
Comparing Thickness and Doping-Induced Effects on the Normal States of Infinite-Layer Electron-Doped Cuprates: Is There Anything to Learn?
title Comparing Thickness and Doping-Induced Effects on the Normal States of Infinite-Layer Electron-Doped Cuprates: Is There Anything to Learn?
title_full Comparing Thickness and Doping-Induced Effects on the Normal States of Infinite-Layer Electron-Doped Cuprates: Is There Anything to Learn?
title_fullStr Comparing Thickness and Doping-Induced Effects on the Normal States of Infinite-Layer Electron-Doped Cuprates: Is There Anything to Learn?
title_full_unstemmed Comparing Thickness and Doping-Induced Effects on the Normal States of Infinite-Layer Electron-Doped Cuprates: Is There Anything to Learn?
title_short Comparing Thickness and Doping-Induced Effects on the Normal States of Infinite-Layer Electron-Doped Cuprates: Is There Anything to Learn?
title_sort comparing thickness and doping-induced effects on the normal states of infinite-layer electron-doped cuprates: is there anything to learn?
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9044742/
https://www.ncbi.nlm.nih.gov/pubmed/35407212
http://dx.doi.org/10.3390/nano12071092
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