Hall Matthew A, Altepeter Joseph B, Kumar Prem
Center for Photonic Communication and Computing, Department of Electrical Engineering and Computer Science, Northwestern University, 2145 Sheridan Road, Evanston, IL 60208-3118, USA.
Opt Express. 2009 Aug 17;17(17):14558-66. doi: 10.1364/oe.17.014558.
A growing number of quantum communication protocols require entanglement distribution among remote parties, which is best accomplished by exploiting the mature technology and extensive infrastructure of low-loss optical fiber. For this reason, a practical source of entangled photons must be drop-in compatible with optical fiber networks. Here we demonstrate such a source for the first time, in which the nonlinearity of standard single-mode fiber is utilized to yield entangled photon pairs in the 1310-nm O-band. Using an ultra-stable design, we produce polarization entanglement with 98.0% +/- 0.5% fidelity to a maximally entangled state as characterized via coincidence-basis tomography. To demonstrate the source's drop-in capability, we transmit one photon from each entangled pair through a telecommunications-grade optical amplifier set to boost classical 1550-nm (C-band) communication signals. We verify that the photon pairs experience no measurable decoherence upon passing through the active amplifier (the output state's fidelity with a maximally entangled state is 98.4% +/- 1.4%).
越来越多的量子通信协议要求在远程方之间进行纠缠分发,而利用成熟的低损耗光纤技术和广泛的基础设施能最好地实现这一点。因此,一个实用的纠缠光子源必须能与光纤网络直接兼容。在此,我们首次展示了这样一种源,其中利用标准单模光纤的非线性来产生处于1310纳米O波段的纠缠光子对。采用超稳定设计,我们通过符合基层析成像表征,产生了与最大纠缠态保真度为98.0%±0.5%的偏振纠缠。为了展示该源的直接兼容能力,我们将每个纠缠对中的一个光子通过一个电信级光放大器进行传输,该放大器用于增强经典的1550纳米(C波段)通信信号。我们验证了光子对在通过有源放大器时没有可测量的退相干现象(输出态与最大纠缠态的保真度为98.4%±1.4%)。