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Interplay and optimization of decoherence mechanisms in the optical control of spin quantum bits implemented on a semiconductor quantum dot

机译:在半导体量子点上实现的自旋量子比特的光学控制中,相干机制的相互作用和优化

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摘要

We study the influence of the environment on an optically induced rotation of a single electron spin in a charged semiconductor quantum dot. We analyze the decoherence mechanisms resulting from the dynamical lattice response to the charge evolution induced in a trion-based optical spin control scheme. Moreover, we study the effect of the finite trion lifetime and of the imperfections of the unitary evolution such as off-resonant excitations and the nonadiabaticity of the driving. We calculate the total error of the operation on a spin-based qubit in an InAs/GaAs quantum dot system and discuss possible optimization against the different contributions. We indicate the parameters which allow for coherent control of the spin with a single qubit gate error as low as 10~(-4).
机译:我们研究了环境对带电半导体量子点中单个电子自旋的光感应旋转的影响。我们分析了由基于晶振的光学自旋控制方案中诱导的电荷演化所引起的动态晶格响应引起的退相干机制。此外,我们研究了有限的Trion寿命和单一演化缺陷的影响,例如非共振激励和驱动的非绝热性。我们计算了InAs / GaAs量子点系统中基于自旋的量子位上运算的总误差,并讨论了针对不同贡献的可能优化。我们给出了允许以单个量子位门控误差低至10〜(-4)进行自旋的相干控制的参数。

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