Spin-orbit coupling induced Van Hove singularity in proximity to a Lifshitz transition in Sr4Ru3O10

Author:

Marques Carolina A.ORCID,Murgatroyd Philip A. E.ORCID,Fittipaldi Rosalba,Osmolska WeronikaORCID,Edwards BrendanORCID,Benedičič Izidor,Siemann Gesa-R.ORCID,Rhodes Luke C.ORCID,Buchberger SebastianORCID,Naritsuka MasahiroORCID,Abarca-Morales Edgar,Halliday Daniel,Polley Craig,Leandersson Mats,Horio MasafumiORCID,Chang JohanORCID,Arumugam Raja,Lettieri MariateresaORCID,Granata VeronicaORCID,Vecchione AntonioORCID,King Phil D. C.ORCID,Wahl PeterORCID

Abstract

AbstractVan Hove singularities (VHss) in the vicinity of the Fermi energy often play a dramatic role in the physics of strongly correlated electron materials. The divergence of the density of states generated by VHss can trigger the emergence of phases such as superconductivity, ferromagnetism, metamagnetism, and density wave orders. A detailed understanding of the electronic structure of these VHss is therefore essential for an accurate description of such instabilities. Here, we study the low-energy electronic structure of the trilayer strontium ruthenate Sr4Ru3O10, identifying a rich hierarchy of VHss using angle-resolved photoemission spectroscopy and millikelvin scanning tunneling microscopy. Comparison of k-resolved electron spectroscopy and quasiparticle interference allows us to determine the structure of the VHss and demonstrate the crucial role of spin-orbit coupling in shaping them. We use this to develop a minimal model from which we identify a mechanism for driving a field-induced Lifshitz transition in ferromagnetic metals.

Publisher

Springer Science and Business Media LLC

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