论文标题
实时超级分辨率干涉测量由结构化非线性光学启用
Real-time superresolution interferometric measurement enabled by structured nonlinear optics
论文作者
论文摘要
光学干涉仪是现代精度计量学的支柱,但它们的分辨率受光源的波长限制,而光源无法无限降低。神奇地,可以使用纠缠的多光源来避免这种限制,因为由N-Photon振幅产生的干扰具有降低的de Broglie波长λ/N。但是,多光子状态产生和巧合计数的极低效率实际上否定了在实际测量中使用多光子状态的潜力。在这里,我们演示了一种基于结构化非线性光学器件的新颖干涉技术,即结构梁的参数上转换,能够实时测量超分辨率测量。主要原理依赖于轨道角动量(OAM)状态(OAM)状态和相关的结构束内相关的相位相位在级联上的上流转换中连续乘以模拟多光子振幅的超级分析相的演化。由于使用明亮的感应梁和OAM模式投影,因此可以实时观察到一个具有几乎完美可见性的12光片de Broglie波长,并且仅使用低成本检测器就可以观察到。我们的结果为实时超级分辨率干涉测量学打开了大门,并为实用应用中的多光子优越性提供了一种有希望的方法。
Optical interferometers are pillars of modern precision metrology, but their resolution is limited by the wavelength of the light source, which cannot be infinitely reduced. Magically, this limitation can be circumvented by using an entangled multiphoton source because interference produced by an N-photon amplitude features a reduced de Broglie wavelength λ/N. However, the extremely low efficiency in multiphoton state generation and coincidence counts actually negates the potential of using multiphoton states in practical measurements. Here, we demonstrate a novel interferometric technique based on structured nonlinear optics, i.e., parametric upconversion of a structured beam, capable of superresolution measurement in real time. The main principle relies in that the orbital angular momentum (OAM) state and associated intramodal phase within the structured beam are both continuously multiplied in cascading upconversion to mimic the superresolved phase evolution of a multiphoton amplitude. Owing to the use of bright sensing beams and OAM mode projection, up to a 12-photon de Broglie wavelength with almost perfect visibility is observed in real time and, importantly, by using only a low-cost detector. Our results open the door to real-time superresolution interferometric metrology and provide a promising way toward multiphoton superiority in practical applications.