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Many-body theory of phonon-induced spin relaxation and decoherence

ORAL

Abstract

First-principles calculations enable accurate predictions of electronic interactions and dynamics. However, computing the electron spin dynamics remains challenging. The spin-orbit interaction causes various dynamical phenomena that couple with phonons, such as spin precession and spin-flip e-ph scattering, which are difficult to describe with current first-principles calculations. In this talk, we present a rigorous framework to study phonon-induced spin relaxation and decoherence, by computing the spin-spin correlation function and its vertex corrections due to e-ph interactions [1,2]. We apply this approach to a model system and develop corresponding first-principles calculations of spin relaxation in GaAs. These calculations show that our vertex-correction formalism can capture the Elliott-Yafet, Dyakonov-Perel, and strong-precession mechanisms - three independent spin decoherence regimes with distinct physical origins - thereby unifying their theoretical treatment and calculation. Our method is general and enables quantitative studies of spin relaxation, decoherence, and transport in a wide range of materials and devices.

Publication: [1] J. Park, Y. Luo, J.-J. Zhou, and M. Bernardi. Preprint: arXiv:2208.09575<br>[2] J. Park, J.-J. Zhou, Y. Luo, and M. Bernardi. Phys. Rev. Lett. 2022 (in press) Preprint: arXiv:2203.06401

Presenters

  • Jinsoo Park

    Caltech, California Institute of Technology

Authors

  • Jinsoo Park

    Caltech, California Institute of Technology

  • Yao Luo

    Caltech

  • Jin-Jian Zhou

    Beijing Institute of Technology, School of Physics, Beijing Institute of Technology

  • Marco Bernardi

    Caltech, California Institute of Technology