Homer L. Dodge Department of Physics and Astronomy, The University of Oklahoma, Norman, OK 73019, USA.
Center for Quantum Research and Technology, The University of Oklahoma, Norman, OK 73019, USA.
Sci Adv. 2023 Jun 2;9(22):eadf9161. doi: 10.1126/sciadv.adf9161.
The ability to use the temporal and spatial degrees of freedom of quantum states of light to encode and transmit information is crucial for a robust and efficient quantum network. In particular, the potential offered by the large dimensionality of the spatial degree of freedom remains unfulfilled, as the necessary level of control required to encode information remains elusive. We encode information in the distribution of the spatial correlations of entangled twin beams by taking advantage of their dependence on the angular spectrum of the pump needed for four-wave mixing. We show that the encoded information can only be extracted through joint spatial measurements of the twin beams and not through individual beam measurements and that the temporal quantum correlations are not modified. The ability to engineer the spatial properties of twin beams will enable high-capacity quantum networks and quantum-enhanced spatially resolved sensing and imaging.
利用光量子态的时空自由度来编码和传输信息的能力对于稳健高效的量子网络至关重要。特别是,由于编码信息所需的必要控制水平仍然难以捉摸,因此空间自由度的大维度所提供的潜力尚未得到充分利用。我们通过利用纠缠双光束的空间相关性分布对信息进行编码,这种相关性依赖于四波混频所需的泵浦角谱。我们表明,只能通过对双光束进行联合空间测量来提取编码信息,而不能通过单独的光束测量来提取,并且时间量子相关性不会被修改。对双光束空间特性进行工程设计的能力将使大容量量子网络和量子增强的空间分辨传感和成像成为可能。