Nuclear spin polaron-formation: anisotropy effects and quantum phase transition
arXiv:2202.02105 · doi:10.1103/PhysRevB.105.195309
Abstract
We study theoretically the formation of the nuclear-spin polaron state in semiconductor nanosystems within the Lindblad equation approach. To this end, we derive a general Lindblad equation for the density operator that complies with the symmetry of the system Hamiltonian and address the nuclear-spin polaron formation for localized charge carriers subject to an arbitrarily anisotropic hyperfine interaction when optically cooling the nuclei. The steady-state solution of the density matrix for an anisotropic central spin model is presented as a function of the electron and nuclear spin bath temperature. Results for the electron-nuclear spin correlator as well as data for the nuclear spin distribution function serve as a measure of spin-entanglement. The features in both of them clearly indicate the formation of the nuclear polaron state at low temperatures where the crossover regime coincides with an enhancement of quantum fluctuations and agrees with the mean-field prediction of the critical temperature line. We can identify two distinct polaron states dependent upon the hyperfine anisotropy which are separated by a quantum phase transition at the isotropic point. These states are reflected in the temporal spin auto-correlation functions accessible in experiment via spin-noise measurements.
19 pages, 8 figures
References in corpus (9)
- Hyperfine interaction in a quantum dot: Non-Markovian electron spin dynamics
- Spin decoherence of a heavy hole coupled to nuclear spins in a quantum dot
- Quantum Interface of an Electron and a Nuclear Ensemble
- Spin noise in quantum dot ensembles
- Spin- and entanglement-dynamics in the central spin model with homogeneous couplings
- Spin temperature concept verified by optical magnetometry of nuclear spins
- Theory of optically detected spin noise in nanosystems
- Nuclear spin relaxation in n-GaAs: from insulating to metallic regime
- Exactly solvable spin dynamics of an electron coupled to large number of nuclei and the electron-nuclear spin echo in a quantum dot