Fiurášek Jaromír
Opt Express. 2022 Jan 17;30(2):1466-1489. doi: 10.1364/OE.443389.
We propose and theoretically analyze a teleportation-based scheme for the high-fidelity noiseless quantum amplification of coherent states of light. In our approach, the probabilistic noiseless quantum amplification operation is encoded into a suitable auxiliary two-mode entangled state and then applied to the input coherent state via continuous-variable quantum teleportation. The scheme requires conditioning on the outcomes of homodyne measurements in the teleportation protocol. In contrast to high-fidelity noiseless quantum amplifiers based on combination of conditional single-photon addition and subtraction, the present scheme requires only photon subtraction in combination with auxiliary Gaussian squeezed vacuum states. We first provide a pure-state description of the protocol which allows us to to clearly explain its principles and functioning. Next we develop a more comprehensive model based on phase-space representation of quantum states, that accounts for various experimental imperfections such as excess noise in the auxiliary squeezed states or limited efficiency of the single-photon detectors that can only distinguish the presence or absence of photons. We present and analyze predictions of this phase-space model of the noiseless teleamplifier.
我们提出并从理论上分析了一种基于量子隐形传态的方案,用于对光的相干态进行高保真无噪声量子放大。在我们的方法中,概率性无噪声量子放大操作被编码到一个合适的辅助双模纠缠态中,然后通过连续变量量子隐形传态应用于输入相干态。该方案需要根据隐形传态协议中的零差测量结果进行条件设定。与基于条件单光子加和减相结合的高保真无噪声量子放大器不同,本方案仅需要光子减法与辅助高斯压缩真空态相结合。我们首先给出该协议的纯态描述,这使我们能够清楚地解释其原理和运作方式。接下来,我们基于量子态的相空间表示开发了一个更全面的模型,该模型考虑了各种实验缺陷,如辅助压缩态中的过量噪声或只能区分光子是否存在的单光子探测器的有限效率。我们给出并分析了这种无噪声远程放大器相空间模型的预测结果。