Literature DB >> 32576687

Electronically driven spin-reorientation transition of the correlated polar metal Ca3Ru2O7.

Igor Marković1,2, Matthew D Watson1, Oliver J Clark1, Federico Mazzola1, Edgar Abarca Morales1,2, Chris A Hooley1, Helge Rosner2, Craig M Polley3, Thiagarajan Balasubramanian3, Saumya Mukherjee4, Naoki Kikugawa5, Dmitry A Sokolov2, Andrew P Mackenzie1,2, Phil D C King6.   

Abstract

The interplay between spin-orbit coupling and structural inversion symmetry breaking in solids has generated much interest due to the nontrivial spin and magnetic textures which can result. Such studies are typically focused on systems where large atomic number elements lead to strong spin-orbit coupling, in turn rendering electronic correlations weak. In contrast, here we investigate the temperature-dependent electronic structure of [Formula: see text], a [Formula: see text] oxide metal for which both correlations and spin-orbit coupling are pronounced and in which octahedral tilts and rotations combine to mediate both global and local inversion symmetry-breaking polar distortions. Our angle-resolved photoemission measurements reveal the destruction of a large hole-like Fermi surface upon cooling through a coupled structural and spin-reorientation transition at 48 K, accompanied by a sudden onset of quasiparticle coherence. We demonstrate how these result from band hybridization mediated by a hidden Rashba-type spin-orbit coupling. This is enabled by the bulk structural distortions and unlocked when the spin reorients perpendicular to the local symmetry-breaking potential at the Ru sites. We argue that the electronic energy gain associated with the band hybridization is actually the key driver for the phase transition, reflecting a delicate interplay between spin-orbit coupling and strong electronic correlations and revealing a route to control magnetic ordering in solids.

Entities:  

Keywords:  Rashba spin–orbit; angle-resolved photoemission; correlated oxide; magnetism; ruthenate

Year:  2020        PMID: 32576687      PMCID: PMC7355039          DOI: 10.1073/pnas.2003671117

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  18 in total

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10.  Spin valve effect and magnetoresistivity in single crystalline Ca3Ru2O7.

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  1 in total

1.  Electronically driven spin-reorientation transition of the correlated polar metal Ca3Ru2O7.

Authors:  Igor Marković; Matthew D Watson; Oliver J Clark; Federico Mazzola; Edgar Abarca Morales; Chris A Hooley; Helge Rosner; Craig M Polley; Thiagarajan Balasubramanian; Saumya Mukherjee; Naoki Kikugawa; Dmitry A Sokolov; Andrew P Mackenzie; Phil D C King
Journal:  Proc Natl Acad Sci U S A       Date:  2020-06-23       Impact factor: 11.205

  1 in total

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