Long-term Dynamics of the Electron-nuclear Spin System of a Semiconductor Quantum Dot
I. A. Merkulov, G. Alvarez, D. R. Yakovlev, T. C. Schulthess

TL;DR
This paper develops a quasi-classical model for nuclear spin polarization and relaxation in quantum dots with an electron, analyzing how correlation time affects spin dynamics and identifying conditions for maximum nuclear polarization.
Contribution
It introduces a comprehensive theoretical framework for electron-nuclear spin interactions in quantum dots, considering arbitrary electron spin polarization mechanisms and correlation times.
Findings
Maximum nuclear polarization occurs near the electron spin precession period.
The indirect hyperfine field on nuclei reaches a maximum at certain correlation times.
High nuclear polarization reduces the relaxation rate of nuclear spins.
Abstract
A quasi-classical theoretical description of polarization and relaxation of nuclear spins in a quantum dot with one resident electron is developed for arbitrary mechanisms of electron spin polarization. The dependence of the electron-nuclear spin dynamics on the correlation time of electron spin precession, with frequency , in the nuclear hyperfine field is analyzed. It is demonstrated that the highest nuclear polarization is achieved for a correlation time close to the period of electron spin precession in the nuclear field. For these and larger correlation times, the indirect hyperfine field, which acts on nuclear spins, also reaches a maximum. This maximum is of the order of the dipole-dipole magnetic field that nuclei create on each other. This value is non-zero even if the average electron polarization vanishes. It is shown that the transition from short…
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