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Subsecond spin relaxation times in quantum dots at zero applied magnetic field due to a strong electron-nuclear
R Oulton1, A Greilich, S Yu Verbin
1Experimentelle Physik II, Universität Dortmund, D-44221 Dortmund, Germany.
Spin-polarized electrons in quantum dots stabilize nuclear fields, creating nuclear spin polarons. This greatly reduces spin depolarization, enabling ultralong electron spin memory for 0.3 seconds at 2 K.
Area of Science:
- Quantum dots
- Spintronics
- Condensed Matter Physics
Background:
- Ultralong electron spin memory is crucial for quantum information processing.
- Nuclear spin polarization is key to stabilizing electron spins in quantum dots at zero magnetic field.
Purpose of the Study:
- To demonstrate how spin-polarized electrons in n-doped (In,Ga)As/GaAs quantum dots align nuclear fields.
- To investigate the mechanism of electron spin stabilization via nuclear spin polarization.
Main Methods:
- Utilizing the hyperfine interaction to study electron-nuclear spin coupling in quantum dots.
- Observing the formation of nuclear spin polarons and their effect on electron spin polarization.
Main Results:
- Spin-polarized electrons were shown to align the nuclear field through hyperfine interaction.
- Formation of a nuclear spin polaron stabilized electron polarization.
- Significantly reduced spin depolarization for both electron and nuclear spins.
Conclusions:
- The study confirms the formation of nuclear spin polarons as a mechanism for ultralong spin memory.
- Electron spin polarization is stabilized by aligning the nuclear magnetic field.
- The coupled electron-nuclear spin system retains spin memory for up to 0.3 seconds at 2 K.
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