Literature DB >> 27096369

Polar metals by geometric design.

T H Kim1, D Puggioni2, Y Yuan3, L Xie4,5, H Zhou6, N Campbell7, P J Ryan6, Y Choi6, J-W Kim6, J R Patzner1, S Ryu1, J P Podkaminer1, J Irwin7, Y Ma1, C J Fennie8, M S Rzchowski7, X Q Pan4, V Gopalan3, J M Rondinelli2, C B Eom1.   

Abstract

Gauss's law dictates that the net electric field inside a conductor in electrostatic equilibrium is zero by effective charge screening; free carriers within a metal eliminate internal dipoles that may arise owing to asymmetric charge distributions. Quantum physics supports this view, demonstrating that delocalized electrons make a static macroscopic polarization, an ill-defined quantity in metals--it is exceedingly unusual to find a polar metal that exhibits long-range ordered dipoles owing to cooperative atomic displacements aligned from dipolar interactions as in insulating phases. Here we describe the quantum mechanical design and experimental realization of room-temperature polar metals in thin-film ANiO3 perovskite nickelates using a strategy based on atomic-scale control of inversion-preserving (centric) displacements. We predict with ab initio calculations that cooperative polar A cation displacements are geometrically stabilized with a non-equilibrium amplitude and tilt pattern of the corner-connected NiO6 octahedral--the structural signatures of perovskites--owing to geometric constraints imposed by the underlying substrate. Heteroepitaxial thin-films grown on LaAlO3 (111) substrates fulfil the design principles. We achieve both a conducting polar monoclinic oxide that is inaccessible in compositionally identical films grown on (001) substrates, and observe a hidden, previously unreported, non-equilibrium structure in thin-film geometries. We expect that the geometric stabilization approach will provide novel avenues for realizing new multifunctional materials with unusual coexisting properties.

Entities:  

Year:  2016        PMID: 27096369     DOI: 10.1038/nature17628

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


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  19 in total

1.  Designing antiphase boundaries by atomic control of heterointerfaces.

Authors:  Zhen Wang; Hangwen Guo; Shuai Shao; Mohammad Saghayezhian; Jun Li; Rosalba Fittipaldi; Antonio Vecchione; Prahald Siwakoti; Yimei Zhu; Jiandi Zhang; E W Plummer
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Journal:  Proc Natl Acad Sci U S A       Date:  2020-06-23       Impact factor: 11.205

4.  Nanoscale self-templating for oxide epitaxy with large symmetry mismatch.

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5.  Experimental evidence for bipolaron condensation as a mechanism for the metal-insulator transition in rare-earth nickelates.

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Authors:  Yanwei Cao; Zhen Wang; Se Young Park; Yakun Yuan; Xiaoran Liu; Sergey M Nikitin; Hirofumi Akamatsu; M Kareev; S Middey; D Meyers; P Thompson; P J Ryan; Padraic Shafer; A N'Diaye; E Arenholz; Venkatraman Gopalan; Yimei Zhu; Karin M Rabe; J Chakhalian
Journal:  Nat Commun       Date:  2018-04-18       Impact factor: 14.919

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