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Optical conductivity and superconductivity in highly overdoped La2-x Ca x CuO4 thin films.


ABSTRACT: We have used atomic layer-by-layer oxide molecular beam epitaxy to grow epitaxial thin films of [Formula: see text] with x up to 0.5, greatly exceeding the solubility limit of Ca in bulk systems ([Formula: see text]). A comparison of the optical conductivity measured by spectroscopic ellipsometry to prior predictions from dynamical mean-field theory demonstrates that the hole concentration p is approximately equal to x. We find superconductivity with [Formula: see text] of 15 to 20 K up to the highest doping levels and attribute the unusual stability of superconductivity in [Formula: see text] to the nearly identical radii of La and Ca ions, which minimizes the impact of structural disorder. We conclude that careful disorder management can greatly extend the "superconducting dome" in the phase diagram of the cuprates.

SUBMITTER: Kim G 

PROVIDER: S-EPMC8325326 | biostudies-literature | 2021 Jul

REPOSITORIES: biostudies-literature

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Optical conductivity and superconductivity in highly overdoped La<sub>2-<i>x</i></sub> Ca <sub><i>x</i></sub> CuO<sub>4</sub> thin films.

Kim Gideok G   Rabinovich Ksenia S KS   Boris Alexander V AV   Yaresko Alexander N AN   Suyolcu Y Eren YE   Wu Yu-Mi YM   van Aken Peter A PA   Christiani Georg G   Logvenov Gennady G   Keimer Bernhard B  

Proceedings of the National Academy of Sciences of the United States of America 20210701 30


We have used atomic layer-by-layer oxide molecular beam epitaxy to grow epitaxial thin films of [Formula: see text] with x up to 0.5, greatly exceeding the solubility limit of Ca in bulk systems ([Formula: see text]). A comparison of the optical conductivity measured by spectroscopic ellipsometry to prior predictions from dynamical mean-field theory demonstrates that the hole concentration p is approximately equal to x. We find superconductivity with [Formula: see text] of 15 to 20 K up to the h  ...[more]

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