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通过核自旋的光学制备增强电子自旋相干性。

Enhancement of electron spin coherence by optical preparation of nuclear spins.

作者信息

Stepanenko Dimitrije, Burkard Guido, Giedke Geza, Imamoglu Atac

机构信息

Department of Physics and Astronomy, University of Basel, Klingelbergstrasse 82, CH-4056 Basel, Switzerland.

出版信息

Phys Rev Lett. 2006 Apr 7;96(13):136401. doi: 10.1103/PhysRevLett.96.136401. Epub 2006 Apr 3.

Abstract

We study a large ensemble of nuclear spins interacting with a single electron spin in a quantum dot under optical excitation and photon detection. At the two-photon resonance between the two electron-spin states, the detection of light scattering from the intermediate exciton state acts as a weak quantum measurement of the effective magnetic (Overhauser) field due to the nuclear spins. In a coherent population trapping state without light scattering, the nuclear state is projected into an eigenstate of the Overhauser field operator, and electron decoherence due to nuclear spins is suppressed: We show that this limit can be approached by adapting the driving frequencies when a photon is detected. We use a Lindblad equation to describe the driven system under photon emission and detection. Numerically, we find an increase of the electron coherence time from 5 to 500 ns after a preparation time of 10 micros.

摘要

我们研究了在光激发和光子探测下,与量子点中的单个电子自旋相互作用的大量核自旋系综。在两个电子自旋态之间的双光子共振处,对来自中间激子态的光散射的探测,充当了对由于核自旋产生的有效磁(奥弗豪泽)场的弱量子测量。在没有光散射的相干布居囚禁态中,核态被投影到奥弗豪泽场算符的本征态,并且由于核自旋导致的电子退相干被抑制:我们表明,当探测到一个光子时,通过调整驱动频率可以接近这个极限。我们使用林德布拉德方程来描述在光子发射和探测下的驱动系统。在数值上,我们发现在10微秒的制备时间后,电子相干时间从5纳秒增加到了500纳秒。

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