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Coherent properties of a two-level system based on a quantum-dot photodiode

机译:基于量子点光电二极管的两能级系统的相干特性

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摘要

Present-day information technology is based mainly on incoherent processes in conventional semiconductor devices. To realize concepts for future quantum information technologies, which are based on coherent phenomena, a new type of 'hardware' is required. Semiconductor quantum dots are promising candidates for the basic device units for quantum information processing. One approach is to exploit optical excitations (excitons) in quantum dots. It has already been demonstrated that coherent manipulation between two excitonic energy levels―via so-called Rabi oscillations―can be achieved in single quantum dots by applying electromagnetic fields. Here we make use of this effect by placing an InGaAs quantum dot in a photodiode, which essentially connects it to an electric circuit. We demonstrate that coherent optical excitations in the quantum-dot two-level system can be converted into deterministic photocurrents. For optical excitation with so-called π -pulses, which completely invert the two-level system, the current is given by I = fe, where f is the repetition frequency of the experiment and e is the elementary charge. We find that this device can function as an optically triggered single-electron turnstile.
机译:当今的信息技术主要基于常规半导体器件中的非相干过程。为了实现基于相干现象的未来量子信息技术的概念,需要一种新型的“硬件”。半导体量子点是用于量子信息处理的基本设备单元的有希望的候选者。一种方法是利用量子点中的光激发(激子)。已经证明,通过施加电磁场,可以在单个量子点中实现两个激子能级之间的相干操纵(通过所谓的拉比振荡)。在这里,我们通过将InGaAs量子点放置在光电二极管中来利用这种效应,该量子点实际上将其连接到电路。我们证明了量子点两级系统中的相干光激发可以转换为确定性光电流。对于完全反转两级系统的具有所谓π脉冲的光激发,电流由I = fe给出,其中f是实验的重复频率,e是基本电荷。我们发现该设备可以用作光学触发的单电子旋转栅。

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