Schiano Carlo, Sephton Bereneice, Aiello Roberto, Graffitti Francesco, Lal Nijil, Chiuri Andrea, Santoro Simone, Amato Luigi Santamaria, Marrucci Lorenzo, de Lisio Corrado, D'Ambrosio Vincenzo
Dipartimento di Fisica, Università di Napoli Federico II, Complesso Universitario di Monte S. Angelo, Via Cintia, 80126 Napoli, Italy.
Institute of Photonics and Quantum Sciences, School of Engineering and Physical Sciences, Heriot-Watt University, Edinburgh EH14 4AS, UK.
Sci Adv. 2024 Jul 26;10(30):eadm9278. doi: 10.1126/sciadv.adm9278. Epub 2024 Jul 24.
Quantum interference is a central resource in many quantum-enhanced tasks, from computation to communication. While usually occurring between identical photons, it can also be enabled by performing projective measurements that render the photons indistinguishable, a process known as quantum erasing. Structured light forms another hallmark of photonics, achieved by manipulating the degrees of freedom of light, and enables a multitude of applications in both classical and quantum regimes. By combining these ideas, we design and experimentally demonstrate a simple and robust scheme that tailors quantum interference to engineer photonic states with spatially structured coalescence along the transverse profile, a type of quantum mode with no classical counterpart. To achieve this, we locally tune the distinguishability of a photon pair by spatially structuring the polarization and creating a structured quantum eraser. We believe that these spatially engineered multiphoton quantum states may be of significance in fields such as quantum metrology, microscopy, and communication.
量子干涉是许多量子增强任务中的核心资源,从计算到通信皆是如此。虽然通常发生在相同光子之间,但通过执行使光子不可区分的投影测量也可以实现量子干涉,这一过程称为量子擦除。结构化光是光子学的另一个标志,它通过操纵光的自由度来实现,并在经典和量子领域都有大量应用。通过结合这些理念,我们设计并通过实验证明了一种简单且稳健的方案,该方案通过沿横向轮廓对量子干涉进行定制,以设计具有空间结构化聚结的光子态,这是一种没有经典对应物的量子模式。为实现这一点,我们通过对偏振进行空间结构化并创建一个结构化量子擦除器来局部调整光子对的可区分性。我们相信,这些通过空间工程设计的多光子量子态可能在量子计量、显微镜和通信等领域具有重要意义。