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      Coupling Lattice Instabilities Across the Interface in Ultrathin Oxide Heterostructures

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          Abstract

          Oxide heterointerfaces constitute a rich platform for realizing novel functionalities in condensed matter. A key aspect is the strong link between structural and electronic properties, which can be modified by interfacing materials with distinct lattice symmetries. Here, we determine the effect of the cubic-tetragonal distortion of SrTiO 3 on the electronic properties of thin films of SrIrO 3, a topological crystalline metal hosting a delicate interplay between spin-orbit coupling and electronic correlations. We demonstrate that below the transition temperature at 105 K, SrIrO 3 orthorhombic domains couple directly to tetragonal domains in SrTiO 3. This forces the in-phase rotational axis to lie in-plane and creates a binary domain structure in the SrIrO 3 film. The close proximity to the metal–insulator transition in ultrathin SrIrO 3 causes the individual domains to have strongly anisotropic transport properties, driven by a reduction of bandwidth along the in-phase axis. The strong structure–property relationships in perovskites make these compounds particularly suitable for static and dynamic coupling at interfaces, providing a promising route towards realizing novel functionalities in oxide heterostructures.

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          Most cited references40

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          Simple ways of determining perovskite structures

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            X‐Ray Diffractometry of Low‐Temperature Phase Transformations in Strontium Titanate

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                Author and article information

                Journal
                ACS Mater Lett
                ACS Mater Lett
                tz
                amlcef
                ACS Materials Letters
                American Chemical Society
                2639-4979
                09 March 2020
                06 April 2020
                : 2
                : 4
                : 389-394
                Affiliations
                []Kavli Institute of Nanoscience, Delft University of Technology , Lorentzweg 1, 2628 CJ Delft, Netherlands
                []Department of Quantum Matter Physics, University of Geneva , 24 Quai Ernest-Ansermet, 1211 Genève 4, Switzerland
                []International Research Centre MagTop, Institute of Physics, Polish Academy of Sciences , Aleja Lotników 32/46, PL-02668 Warsaw, Poland
                [§ ]Consiglio Nazionale delle Ricerche , Istituto Superconduttori, Materiali Innovativi e Dispositivi (CNR-SPIN), c/o Università G. D’Annunzio, I-66100 Chieti, Italy
                Author notes
                Article
                10.1021/acsmaterialslett.9b00540
                7254603
                987aaffe-f22f-459d-89df-7624e977acf9
                Copyright © 2020 American Chemical Society

                This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License, which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.

                History
                : 19 December 2019
                : 09 March 2020
                Categories
                Letter
                Custom metadata
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                tz9b00540

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