Strain Relaxation Effects on the Valence-Driven Spin-State/Metal-Insulator Transition in Epitaxial (Pr1-yYy)1-xCaxCoO3-δ Films
ORAL
Abstract
Pr-based cobaltites such as Pr1-xCaxCoO3-δ and (Pr1-yYy)1-xCaxCoO3-δ exhibit remarkable first-order coupled spin-state/metal-insulator/structural transitions driven by a unique Pr valence transition. While such phenomena are restricted to cryogenic temperatures in bulk, recent work of ours stabilized a valence transition to Tvt = 245 K in compressively strained (Pr1-yYy)1-xCaxCoO3-δ films. Here, we explore the effects of strain relaxation in such films. Careful analysis of temperature-dependent resistivity reveals splitting of the valence transition into two with increasing film thickness, one at the fully strained Tvt and one at the bulk Tvt. In-plane and out-of-plane lattice parameters from specular X-ray diffraction and asymmetric reciprocal space maps support this picture, evidencing partial strain relaxation with increasing thickness. Remarkably, in the ultrathin limit below ~10 unit cells, Tvt remains constant but the resistivity change across the transition is suppressed, destroying the high-temperature metallic state. We discuss possible origins of this low thickness behavior. Our results shed further light on the strain control of these unique spin-state/metal-insulator/structural/valence transitions.
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Publication:A paper is planned from this work.
Presenters
John E Dewey
Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, USA, University of Minnesota
Authors
John E Dewey
Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, USA, University of Minnesota
Vipul Chaturvedi
University of Minnesota, Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, USA
William M Postiglione
University of Minnesota, Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, USA
Andrew Jacobson
University of Minnesota, Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, USA
Caroline Korostynski
Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, USA, University of Minnesota
Chris Leighton
University of Minnesota, Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, USA