Chen Jia-Yang, Sua Yong Meng, Zhao Zi-Tong, Li Mo, Huang Yu-Ping
Department of Physics and Engineering Physics, Stevens Institute of Technology, Hoboken, New Jersey, 07030, USA.
Center for Quantum Science and Engineering, Stevens Institute of Technology, Hoboken, New Jersey, 07030, USA.
Sci Rep. 2017 Nov 1;7(1):14831. doi: 10.1038/s41598-017-13327-x.
Overlapping in an optical medium with nonlinear susceptibilities, lightwaves can interact, changing each other's phase, wavelength, waveform shape, or other properties. Such nonlinear optical phenomena, discovered over a half-century ago, have led to a breadth of important applications. Applied to quantum-mechanical signals, however, these phenomena face fundamental challenges that arise from the multimodal nature of the interaction between the electromagnetic fields, such as phase noises and spontaneous Raman scattering. The quantum Zeno blockade allows strong interaction between lightwaves without physical overlap between them, thus offering a viable solution for the aforementioned challenges, as indicated in recent bulk-optics experiments. Here, we report on the observation of quantum Zeno blockade on chip, where a lightwave is modulated by another in a distinct "interaction-free" manner. For quantum applications, we also verify its operations on single-photon signals. Our results promise a scalable platform for overcoming several longstanding challenges in applied nonlinear and quantum optics, enabling manipulation and interaction of quantum signals without decoherence.
在具有非线性极化率的光学介质中,光波相互重叠时会发生相互作用,从而改变彼此的相位、波长、波形形状或其他特性。这种半个多世纪前就被发现的非线性光学现象,已带来了广泛的重要应用。然而,当应用于量子力学信号时,这些现象面临着由电磁场之间相互作用的多模态性质所引发的基本挑战,比如相位噪声和自发拉曼散射。量子芝诺阻塞允许光波之间进行强相互作用,而无需它们之间的物理重叠,因此,如近期的体光学实验所示,它为上述挑战提供了一个可行的解决方案。在此,我们报告了在芯片上对量子芝诺阻塞的观测,其中一个光波以独特的“无相互作用”方式被另一个光波调制。对于量子应用,我们还验证了其对单光子信号的操作。我们的结果有望为克服应用非线性光学和量子光学中的几个长期挑战提供一个可扩展的平台,从而实现量子信号的无退相干操纵和相互作用。