Predicting electron spin decoherence with a many-body first-principles approach
Creators
Abstract
Developing a microscopic understanding of spin decoherence is essential to advancing quantum technologies. Electron spin decoherence due to atomic vibrations (phonons) plays a special role as it sets an intrinsic limit to the performance of spin-based quantum devices. Two main sources of phonon-induced spin decoherence - the Elliott-Yafet (EY) and Dyakonov-Perel (DP) mechanisms - have distinct physical origins and theoretical treatments. Here we show calculations that unify their modeling and enable accurate predictions of spin relaxation and precession in semiconductors. We compute the phonon-dressed vertex of the spin-spin correlation function, with a treatment analogous to the calculation of the anomalous electron magnetic moment in QED. We find that the vertex correction provides a giant renormalization of the electron spin dynamics in solids, greater by many orders of magnitude than the corresponding correction in vacuum. Our work demonstrates a general approach for quantitative analysis of spin decoherence in materials, advancing the quest for spin-based quantum technologies.
Additional Information
J.P. thanks Yao Luo for fruitful discussions. This work was supported by the National Science Foundation under Grants No. DMR-1750613 and QII-TAQS 1936350.Attached Files
Accepted Version - 2203.06401.pdf
Files
2203.06401.pdf
Additional details
Identifiers
- Eprint ID
- 114215
- Resolver ID
- CaltechAUTHORS:20220411-225124081
Related works
Funding
- NSF
- DMR-1750613
- NSF
- OMA-1936350
Dates
- Created
-
2022-04-12Created from EPrint's datestamp field
- Updated
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2023-06-02Created from EPrint's last_modified field
Caltech Custom Metadata
- Caltech groups
- Physics Department