Frequency translation of quantum states of light by four-wave mixing in optical fiber

M. Raymer, H. McGuinness, S. J. van Enk, C. McKinstrie, S. Radic
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Abstract

We consider, experimentally and theoretically, the quantum frequency translation (i.e., noiseless conversion) of quantum states of light (Fig. 1), including single-photon states. This process is useful for allowing quantum optical systems (atoms, ions, cavities, fibers, detectors) operating at different wavelengths to communicate with each other. We recently developed the process of frequency translation in optical fiber through use of the Bragg scattering four-wave mixing process (Fig. 2). The high nonlinearity and the ability to control dispersion in photonic crystal fiber (PCF) enable efficient translation between nearby photon channels within the visible to-near-infrared spectral range, useful in quantum networks. This offers an important advantage compared with frequency translation using second-order nonlinear optical crystals, which limits the translation process to widely separated frequencies only.
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光纤中四波混频光量子态的频率平移
我们从实验和理论上考虑光的量子态的量子频率平移(即无噪声转换)(图1),包括单光子态。这个过程对于允许在不同波长下工作的量子光学系统(原子、离子、空腔、光纤、探测器)相互通信是有用的。我们最近通过使用布拉格散射四波混频工艺开发了光纤中的频率转换过程(图2)。光子晶体光纤(PCF)中的高非线性和控制色散的能力使可见光到近红外光谱范围内附近光子通道之间的有效转换成为可能,这在量子网络中很有用。与使用二阶非线性光学晶体的频率转换相比,这提供了一个重要的优势,二阶非线性光学晶体将转换过程限制在广泛分离的频率上。
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