论文标题
GHz脉冲光激发抑制INGAAS量子点集合中核自旋波动的抑制
Suppression of nuclear spin fluctuations in an InGaAs quantum dot ensemble by GHz-pulsed optical excitation
论文作者
论文摘要
横向磁场中的单个带电(IN,GA)合奏的相干电子自旋动力学AS/GAAS量子点是由1 GHz重复频率的周期性光激发驱动的。尽管电子$ g $因子具有强烈的不均匀性,光学转变的光谱传播以及核自旋波动的广泛分布,但我们能够将激发旋转的整个集合推向与激光重复频率相称的单个Larmor预动力模式。此外,我们证明了来自探测的光学转变的泵脉冲的光学失呼会引起定向的动态核极化,并导致作用在电子集合上的总磁场的离散化。最后,我们表明,高度周期性的光激发可以用作通用工具,以强烈降低核自旋波动并制备可靠的核环境,以便随后在不同的操作频率下对电子旋转进行操作。
The coherent electron spin dynamics of an ensemble of singly charged (In,Ga)As/GaAs quantum dots in a transverse magnetic field is driven by periodic optical excitation at 1 GHz repetition frequency. Despite the strong inhomogeneity of the electron $g$ factor, the spectral spread of optical transitions, and the broad distribution of nuclear spin fluctuations, we are able to push the whole ensemble of excited spins into a single Larmor precession mode that is commensurate with the laser repetition frequency. Furthermore, we demonstrate that an optical detuning of the pump pulses from the probed optical transitions induces a directed dynamic nuclear polarization and leads to a discretization of the total magnetic field acting on the electron ensemble. Finally, we show that the highly periodic optical excitation can be used as universal tool for strongly reducing the nuclear spin fluctuations and preparation of a robust nuclear environment for subsequent manipulation of the electron spins, also at varying operation frequencies.