Strain Control of Fermiology and Many-Body Interactions in Two-Dimensional Ruthenates

Here we demonstrate how the Fermi surface topology and quantum many-body interactions can be manipulated via epitaxial strain in the spin-triplet superconductor Sr_{2}RuO_{4} and its isoelectronic counterpart Ba_{2}RuO_{4} using oxide molecular beam epitaxy, in situ angle-resolved photoemission spec...

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Veröffentlicht in:Physical review letters 2016-05, Vol.116 (19), p.197003-197003, Article 197003
Hauptverfasser: Burganov, B, Adamo, C, Mulder, A, Uchida, M, King, P D C, Harter, J W, Shai, D E, Gibbs, A S, Mackenzie, A P, Uecker, R, Bruetzam, M, Beasley, M R, Fennie, C J, Schlom, D G, Shen, K M
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Sprache:eng
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Zusammenfassung:Here we demonstrate how the Fermi surface topology and quantum many-body interactions can be manipulated via epitaxial strain in the spin-triplet superconductor Sr_{2}RuO_{4} and its isoelectronic counterpart Ba_{2}RuO_{4} using oxide molecular beam epitaxy, in situ angle-resolved photoemission spectroscopy, and transport measurements. Near the topological transition of the γ Fermi surface sheet, we observe clear signatures of critical fluctuations, while the quasiparticle mass enhancement is found to increase rapidly and monotonically with increasing Ru-O bond distance. Our work demonstrates the possibilities for using epitaxial strain as a disorder-free means of manipulating emergent properties, many-body interactions, and potentially the superconductivity in correlated materials.
ISSN:0031-9007
1079-7114
DOI:10.1103/PhysRevLett.116.197003