The Knight field and the local nuclear dipole-dipole field in an (In,Ga)As quantum dot ensemble
arXiv:0803.3542 · doi:10.1103/PhysRevB.80.205303
Abstract
We present a comprehensive investigation of the electron-nuclear system of negatively charged InGaAs/GaAs self-assembled quantum dots under the influence of weak external magnetic fields (up to 2 mT). We demonstrate that, in contrast to conventional semiconductor systems, these small fields have a profound influence on the electron spin dynamics, via the hyperfine interaction. Quantum dots, with their comparatively limited number of nuclei, present electron-nuclear behavior that is unique to low-dimensional systems. We show that the conventional Hanle effect used to measure electron spin relaxation times, for example, cannot be used in these systems when the spin lifetimes are long. An individual nucleus in the QD is subject to milli-Tesla effective fields, arising from the interaction with its nearest-neighbors and with the electronic Knight field. The alignment of each nucleus is influenced by application of external fields of the same magnitude. A polarized nuclear system, which may have an effective field strength of several Tesla, may easily be influenced by these milli-Tesla fields. This in turn has a dramatic effect on the electron spin dynamics, and we use this technique to gain a measure of both the dipole-dipole field and the maximum Knight field in our system, thus allowing us to estimate the maximum Overhauser field that may be generated at zero external magnetic field. We also show that one may fine-tune the angle which the Overhauser field makes with the optical axis.
13 pages, 7 figures
References in corpus (14)
- Electron spin relaxation by nuclei in semiconductor quantum dots
- Control and Detection of Singlet-Triplet Mixing in a Random Nuclear Field
- Optical pumping of electronic and nuclear spin in single charge-tunable quantum dots
- Knight Field Enabled Nuclear Spin Polarization in Single Quantum Dots
- Optical pumping of quantum dot nuclear spins
- Enhancement of electron spin coherence by optical preparation of nuclear spins
- Polarized fine structure in the excitation spectrum of a negatively charged quantum dot
- Nuclear Spin Switch in Semiconductor Quantum Dots
- Dynamics of Quantum Dot Nuclear Spin Polarization Controlled by a Single Electron
- Dynamic nuclear polarization of a single charge-tunable InAs/GaAs quantum dot
- Analytical Solution of Electron Spin Decoherence Through Hyperfine Interaction in a Quantum Dot
- Bistability of the Nuclear Polarisation created through optical pumping in InGaAs Quantum Dots
- Qubit protection in nuclear-spin quantum dot memories
- Nonequilibrium nuclear-electron spin dynamics in semiconductor quantum dots
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- Measurements of a fast nuclear spin dynamics in a single InAs quantum dot with positively charged exciton