Real‐Time Superresolution Interferometric Measurement Enabled by Structured Nonlinear Optics

Author:

Zhang Xin‐Yu12,Wu Hai‐Jun1,Yu Bing‐Shi1,Rosales‐Guzmán Carmelo13,Zhu Zhi‐Han1ORCID,Hu Xiao‐Peng2,Shi Bao‐Sen14,Zhu Shi‐Ning2

Affiliation:

1. Wang Da‐Heng Center, HLJ Key Laboratory of Quantum Control Harbin University of Science and Technology Harbin 150080 China

2. National Laboratory of Solid‐State Microstructures, College of Engineering and Applied Sciences Nanjing University Nanjing 210093 China

3. Centro de Investigaciones en Óptica, A.C., Loma del Bosque 115 Colonia Lomas del Campestre León Gto 37150 Mexico

4. CAS Key Laboratory of Quantum Information University of Science and Technology of China Hefei 230026 China

Abstract

AbstractOptical 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 . However, the extremely low efficiency in multiphoton state generation and coincidence counts actually negates the potential of using multiphoton states in practical measurements. Here, a novel interferometric technique based on structured nonlinear optics is demonstrated, 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. The results open the door to real‐time superresolution interferometric metrology and provide a promising way toward multiphoton superiority in practical applications.

Funder

National Natural Science Foundation of China

Key Technologies Research and Development Program

Publisher

Wiley

Subject

Condensed Matter Physics,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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