论文标题

时频光学滤波:效率与时间模式歧视不一致和连贯的实现

Time-frequency optical filtering: efficiency vs. temporal-mode discrimination in incoherent and coherent implementations

论文作者

Raymer, Michael G., Banaszek, Konrad

论文摘要

模拟信号的时频(TF)过滤在射频通信的发展中起着至关重要的作用,目前被认为是光学频域中经典和量子的基本能力。如何最好地设计光学时频(TF)过滤器以通过目标的时间模式(TM),并在TF检测窗口中拒绝背景(噪声)光子?相干TF滤波的解决方案是量子脉冲门,而传统的,更常见的方法是通过一系列不连贯的光谱滤波和时间门控操作实现的。为了比较这两种方法,我们为两阶段不一致的时间频率过滤得出了一般形式,找到信号脉冲传输效率的表达式以及歧视TMS的能力,从而可以阻止不必要的背景光。我们得出了效率和TM歧视能力之间的权衡,并在这两个数量和合并过滤器的时间带宽产品之间找到了非常简洁的关系。我们将形式主义应用于两个示例:矩形过滤器或高斯滤波器,它们都知道正交功能分解。形式主义可以应用于占据输入时间模式的任何光的状态,例如经典相干态信号或光的脉冲单光子状态。我们指出对经典和量子光学通信的影响。例如,我们研究量子键分布,其中必须强烈拒绝背景噪声以保持高质量的纠缠,而需要高信号传输才能确保有用的密钥生成率。

Time-frequency (TF) filtering of analog signals has played a crucial role in the development of radio-frequency communications, and is currently being recognized as an essential capability for communications, both classical and quantum, in the optical frequency domain. How best to design optical time-frequency (TF) filters to pass a targeted temporal mode (TM), and to reject background (noise) photons in the TF detection window? The solution for coherent TF filtering is known, the quantum pulse gate, whereas the conventional, more common method is implemented by a sequence of incoherent spectral filtering and temporal gating operations. To compare these two methods, we derive a general formalism for two-stage incoherent time frequency filtering, finding expressions for signal pulse transmission efficiency, and for the ability to discriminate TMs, which allows the blocking of unwanted background light. We derive the tradeoff between efficiency and TM discrimination ability, and find a remarkably concise relation between these two quantities and the time-bandwidth product of the combined filters. We apply the formalism to two examples, rectangular filters or Gaussian filters, both of which have known orthogonal-function decompositions. The formalism can be applied to any state of light occupying the input temporal mode, e.g., classical coherent-state signals or pulsed single photon states of light. We point out implications in classical and quantum optical communications. As an example, we study quantum key distribution, wherein strong rejection of background noise is necessary to maintain a high quality of entanglement, while high signal transmission is needed to ensure a useful key generation rate.

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