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Resonant two-color high-resolution spectroscopy of a negatively charged exciton in a self-assembled quantum dot

机译:自组装量子点中带负电荷的激子的共振双色高分辨率光谱

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We report high-resolution resonant two-color laser spectroscopy on single self-assembled InGaAs quantum dots. The negatively charged exciton in a quantum dot can decay radiatively into both electron-spin ground states, the states with an electron in the quantum dot with its spin parallel or antiparallel to an applied magnetic field. The two decay paths can be used for optical spin alignment via optical pumping. We apply two laser fields at two different colors resonant with the two Zeeman split optical transitions to study the properties of the spin of the resident electron in the quantum dot in both the Faraday and Voigt geometries. The resonant two-color signal is monitored as a function of the laser power as well as the applied magnetic and electric field allowing us to determine spin decay and dephasing rates. We find the rate at which the optical spin alignment can be performed depending on the direction and the magnitude of the applied magnetic field. Finally we demonstrate the feasibility of performing coherent all-optical spin manipulation of an electron spin in a quantum dot.
机译:我们报告了单个自组装InGaAs量子点上的高分辨率共振双色激光光谱。量子点中带负电荷的激子可以辐射地衰减成两个电子自旋基态,即量子点中电子带有自旋平行于或反平行于所施加磁场的状态。这两个衰减路径可通过光泵浦用于光学自旋对准。我们应用两种不同颜色的两个激光场,与两个Zeeman分裂光学跃迁共振,以研究法拉第和Voigt几何体中量子点中的驻留电子的自旋性质。根据激光功率以及所施加的磁场和电场来监视共振的双色信号,从而使我们能够确定自旋衰减和移相速率。我们发现,取决于所施加磁场的方向和大小,可以执行光学自旋对准的速率。最后,我们证明了对量子点中的电子自旋进行相干全光自旋操纵的可行性。

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