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单量子点的可控相移

Controlled phase shifts with a single quantum dot.

作者信息

Fushman Ilya, Englund Dirk, Faraon Andrei, Stoltz Nick, Petroff Pierre, Vuckovic Jelena

机构信息

Applied Physics, Stanford University, Stanford, CA 94305, USA.

出版信息

Science. 2008 May 9;320(5877):769-72. doi: 10.1126/science.1154643.

Abstract

Optical nonlinearities enable photon-photon interaction and lie at the heart of several proposals for quantum information processing, quantum nondemolition measurements of photons, and optical signal processing. To date, the largest nonlinearities have been realized with single atoms and atomic ensembles. We show that a single quantum dot coupled to a photonic crystal nanocavity can facilitate controlled phase and amplitude modulation between two modes of light at the single-photon level. At larger control powers, we observed phase shifts up to pi/4 and amplitude modulation up to 50%. This was accomplished by varying the photon number in the control beam at a wavelength that was the same as that of the signal, or at a wavelength that was detuned by several quantum dot linewidths from the signal. Our results present a step toward quantum logic devices and quantum nondemolition measurements on a chip.

摘要

光学非线性能够实现光子与光子之间的相互作用,是量子信息处理、光子的量子非破坏测量以及光信号处理等多项提议的核心所在。迄今为止,最大的非线性效应是通过单个原子和原子系综实现的。我们表明,与光子晶体纳米腔耦合的单个量子点能够在单光子水平上促进两种光模式之间的可控相位和幅度调制。在更大的控制功率下,我们观察到高达π/4的相移和高达50%的幅度调制。这是通过在与信号波长相同的波长处,或在与信号相差几个量子点线宽的波长处改变控制光束中的光子数来实现的。我们的结果朝着芯片上的量子逻辑器件和量子非破坏测量迈出了一步。

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