4.8 Article

Direct visualization of Rashba-split bands and spin/orbital-charge interconversion at KTaO3 interfaces

Journal

NATURE COMMUNICATIONS
Volume 13, Issue 1, Pages -

Publisher

NATURE PORTFOLIO
DOI: 10.1038/s41467-022-33621-1

Keywords

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Funding

  1. ERC [833973]
  2. French ANR [ANR-19-CE47-0006-01, ANR-18-CE24-0015-01]
  3. Intel's Science Technology Center FEINMAN
  4. Alexander von Humboldt Foundation
  5. QuantERA project QUANTOX [ANR-18-QUAN-0014]
  6. Agence Nationale de la Recherche (ANR) [ANR-18-CE24-0015] Funding Source: Agence Nationale de la Recherche (ANR)

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Rashba interfaces have shown potential as platforms for spin-charge interconversion. We used angle resolved photoemission spectroscopy to investigate KTaO3 two-dimensional electron gases and observed their Rashba-split bands. Our calculations revealed complex spin and orbital textures, as well as interconversion efficiencies exceeding those of other oxide two-dimensional electron gases.
Rashba interfaces have emerged as promising platforms for spin-charge interconversion through the direct and inverse Edelstein effects. Notably, oxide-based two-dimensional electron gases display a large and gate-tunable conversion efficiency, as determined by transport measurements. However, a direct visualization of the Rashba-split bands in oxide two-dimensional electron gases is lacking, which hampers an advanced understanding of their rich spin-orbit physics. Here, we investigate KTaO3 two-dimensional electron gases and evidence their Rashba-split bands using angle resolved photoemission spectroscopy. Fitting the bands with a tight-binding Hamiltonian, we extract the effective Rashba coefficient and bring insight into the complex multiorbital nature of the band structure. Our calculations reveal unconventional spin and orbital textures, showing compensation effects from quasi-degenerate band pairs which strongly depend on in-plane anisotropy. We compute the band-resolved spin and orbital Edelstein effects, and predict interconversion efficiencies exceeding those of other oxide two-dimensional electron gases. Finally, we suggest design rules for Rashba systems to optimize spin-charge interconversion performance.

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