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Ultrafast optical control of electron spins in quantum wells and quantum dots

机译:量子孔和量子点中电子旋转的超快光学控制

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Using two-color time-resolved Faraday rotation and ellipticity, we demonstrate ultrafast optical control of electron spins in GaAs quantum wells and InAs quantum dots. In quantum wells, a magnetic-field induced electron spin polarization is manipulated by off-resonant pulses. By measuring the amplitude and phase of the spin polarization as a function of pulse detuning, we observe the two competing optical processes: real excitation, which generates a spin polarization through excitation of electron-hole pairs; and virtual excitation, which can manipulate a spin polarization through a stimulated Raman process without exciting electron-hole pairs. In InAs quantum dots, the spin coherence time is much longer, so that the effect of many repetitions of the pump pulses is important. Through real excitation, the pulse train efficiently polarizes electron spins that precess at multiples of the laser repetition frequency, leading to a "mode-locking" phenomenon. Through virtual excitation, the spins can be partially rotated toward the magnetic field direction, leading to a sensitive dependence of the spin orientation on the precession frequency and detuning. The electron spin dynamics strongly influence the nuclear spin dynamics as well, leading to directional control of the nuclear polarization distribution.
机译:使用双色时间分辨的法拉第旋转和椭圆形,我们证明了在GaAs量子阱和inas量子点中的电子旋转的超快光学控制。在量子阱中,通过偏离谐振脉冲操纵磁场感应的电子自旋极化。通过测量旋转偏振的振幅和相位作为脉冲静脉的函数,我们观察到两个竞争光学过程:真正的激励,通过电子 - 孔对产生自旋极化;和虚拟激发,可以通过刺激的拉曼工艺操纵自旋极化,而不令人振奋的电子孔对。在INAS量子点中,旋转相干时间长得多,因此泵脉冲的许多重复的效果很重要。通过真实激励,脉冲系有效地偏振了激光重复频率倍数的电子旋转,导致“模式锁定”现象。通过虚拟励磁,旋转可以朝向磁场方向部分旋转,导致旋转频率和静脉静脉旋转的敏感依赖性。电子自旋动力学也强烈影响核自旋动力学,也能导致核偏振分布的方向控制。

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