Orbital and Spin Edelstein Effects in KTaO3(110) Two-Dimensional Electron Gases
Hugo Witt, Aravind Raji, Srijani Mallik, Börge Göbel, Luis M. Vicente-Arche, Sara Varotto, Julien Bréhin, Gerbold Ménard, Raphaël Salazar, Julien Rault, François Bertran, Patrick Le Fèvre, Isabella Boventer, Ingrid Mertig, Agnès Barthélémy, Alexandre Gloter, Annika Johansson, Nicolas Bergeal, Manuel Bibes
Abstract
The orbital Edelstein effect converts an electric field into a non-equilibrium orbital polarization, opening new opportunities for orbitronics. Although signatures of the orbital Edelstein effect have been reported, its microscopic mechanisms and quantitative validation remain underexplored. Here, by directly linking the atomic structure of KTaO3(110) two-dimensional electron gases to both their calculated and measured electronic band dispersions, we predict and provide experimental evidence for an orbital Edelstein effect that largely counterbalances its spin counterpart. Scanning transmission electron microscopy and electron energy-loss spectroscopy resolve the interfacial atomic configuration, which is used as input for density-functional calculations. Angle-resolved photoemission spectroscopy then confirms the resulting band structure, which is fitted by a tight-binding model enabling computation of the spin and orbital Edelstein responses. Harmonic magnetotransport indicates that a 20 \% contribution from the orbital Edelstein response is necessary to describe the magnitude and anisotropy of the effect. Our results establish KTaO3(110) as a model platform for orbitronics and demonstrate a pathway to generate and harness orbital polarization in quantum oxide systems while also offering new insights into pairing mechanisms in their superconducting state.
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