论文标题

在纠缠双光束的空间相关性中编码的信息

Information encoding in the spatial correlations of entangled twin beams

论文作者

Nirala, Gaurav, Pradyumna, Siva T., Kumar, Ashok, Marino, Alberto M.

论文摘要

使用量子量状态的时间和空间自由度来编码和传输信息的能力对于实施强大而有效的量子网络至关重要。特别是,空间自由程度的巨大维度有望提供重大的增强。但是,由于对空间自由度的编码信息的必要水平仍然难以捉摸,因此这种诺言在很大程度上没有实现。在这里,我们表明信息可以在高度多空间模式的空间相关性的分布中编码。我们利用空间相关性的依赖性对四波混合所需的泵的角光谱的依赖性,如相位匹配所示。可以通过将双束光束的动量分布映射到远场中的位置分布并测量使用高量子效率电子乘电荷耦合设备获得的图像的空间互相关来提取编码的信息。我们进一步表明,无法通过单个光束测量访问编码的信息,并且时间量子相关性未经修改。我们预计,设计空间相关性的分布的能力将是一种新的编码信息自由度,因此为高容量量子信息通道和网络提供了途径。此外,对光量子状态的空间特性的高度控制将使现实世界增强的空间解析和成像应用。

The ability to use the temporal and spatial degrees of freedom of quantum states of light to encode and transmit information is crucial for the implementation of a robust and efficient quantum network. In particular, the large dimensionality of the spatial degree of freedom promises to provide significant enhancements; however, such promise has largely been unfulfilled as the necessary level of control over the spatial degree of freedom to encode information remains elusive. Here, we show that information can be encoded in the distribution of the spatial correlations of highly multi-spatial mode entangled bright twin beams. We take advantage of the dependence of the spatial correlations on the angular spectrum of the pump required for four-wave mixing, as dictated by phase matching. The encoded information can be extracted by mapping the momenta distribution of the twin beams to a position distribution in the far field and measuring the spatial cross-correlation of images acquired with a high quantum efficiency electron multiplying charge coupled device. We further show that the encoded information cannot be accessed through individual beam measurements and that the temporal quantum correlations are not modified. We anticipate that the ability to engineer the distribution of the spatial correlations will serve as a novel degree of freedom to encode information and hence provide a pathway for high capacity quantum information channels and networks. In addition, a high degree of control over the spatial properties of quantum states of light will enable real-world quantum-enhanced spatially resolved sensing and imaging applications.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源