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Strain control of a bandwidth-driven spin reorientation in Ca 3 Ru 2 O 7 .

Authors :
Dashwood CD
Walker AH
Kwasigroch MP
Veiga LSI
Faure Q
Vale JG
Porter DG
Manuel P
Khalyavin DD
Orlandi F
Colin CV
Fabelo O
Krüger F
Perry RS
Johnson RD
Green AG
McMorrow DF
Source :
Nature communications [Nat Commun] 2023 Oct 04; Vol. 14 (1), pp. 6197. Date of Electronic Publication: 2023 Oct 04.
Publication Year :
2023

Abstract

The layered-ruthenate family of materials possess an intricate interplay of structural, electronic and magnetic degrees of freedom that yields a plethora of delicately balanced ground states. This is exemplified by Ca <subscript>3</subscript> Ru <subscript>2</subscript> O <subscript>7</subscript> , which hosts a coupled transition in which the lattice parameters jump, the Fermi surface partially gaps and the spins undergo a 90 <superscript>∘</superscript> in-plane reorientation. Here, we show how the transition is driven by a lattice strain that tunes the electronic bandwidth. We apply uniaxial stress to single crystals of Ca <subscript>3</subscript> Ru <subscript>2</subscript> O <subscript>7</subscript> , using neutron and resonant x-ray scattering to simultaneously probe the structural and magnetic responses. These measurements demonstrate that the transition can be driven by externally induced strain, stimulating the development of a theoretical model in which an internal strain is generated self-consistently to lower the electronic energy. We understand the strain to act by modifying tilts and rotations of the RuO <subscript>6</subscript> octahedra, which directly influences the nearest-neighbour hopping. Our results offer a blueprint for uncovering the driving force behind coupled phase transitions, as well as a route to controlling them.<br /> (© 2023. Springer Nature Limited.)

Details

Language :
English
ISSN :
2041-1723
Volume :
14
Issue :
1
Database :
MEDLINE
Journal :
Nature communications
Publication Type :
Academic Journal
Accession number :
37794061
Full Text :
https://doi.org/10.1038/s41467-023-41714-8