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Dynamic surface displacement measurement using carrier optical vortex interferometer: A numerical study

Dong, Jingtao; Hooshmand, Helia; Liu, Mingyu; Piano, Samanta

Authors

Jingtao Dong

HELIA HOOSHMAND HELIA.HOOSHMAND@NOTTINGHAM.AC.UK
Research Fellow in Optical Metrology

Mingyu Liu



Abstract

The measurement of dynamic surface displacement is crucial in understanding mechanical and thermophysical dynamics at nanometre to micrometre-scale. Interferometers using optical vortices are gaining attention due to their ability to demodulate fringe patterns with helical phase profiles. In this paper, we propose a novel carrier optical vortex interferometer (COVI) that overcomes the limitations of conventional pixelated morphological operations for demodulating fringe patterns. The COVI introduces a carrier frequency by placing a rotating chopper, a collecting lens and a point photodetector at the exit of the interferometer when there is no surface displacement. When the surface moves, the time-dependent total intensity of the chopped fringe pattern produces a Doppler frequency shift with respect to the carrier frequency. Moreover, a high-order Laguerre-Gaussian (LG) beam exhibiting multiple concentric rings is employed to extend the COVI to the dynamic measurement of non-uniform surface displacement with an axisymmetric profile. In this case, the Doppler frequency shift splits into multiple peaks corresponding to the radii of the rings of the LG beam. Locating the Doppler frequency peaks gives an immediate indication of the surface displacement velocities at those radii. Accordingly, the dynamic surface displacement can be retrieved by integrating the velocities over time. The basic principle and the performance of the COVI are theoretically analysed and numerically demonstrated. In addition, the effect of surface misalignment on the displacement measurement is studied thoroughly and the limitations of the measurable velocity are discussed. Although the proposed approach requires further development to make it more applicable in practice, our study provides a first insight into how to measure a dynamic surface displacement using the COVI.

Journal Article Type Article
Acceptance Date Aug 30, 2023
Online Publication Date Sep 7, 2023
Publication Date 2023-12
Deposit Date Sep 7, 2023
Publicly Available Date Sep 8, 2024
Journal Optics and Lasers in Engineering
Print ISSN 0143-8166
Electronic ISSN 1873-0302
Publisher Elsevier BV
Peer Reviewed Peer Reviewed
Volume 171
Article Number 107824
DOI https://doi.org/10.1016/j.optlaseng.2023.107824
Keywords optical vortex interferometer, displacement measurement, carrier frequency, Doppler frequency shift
Public URL https://nottingham-repository.worktribe.com/output/25069909
Publisher URL https://www.sciencedirect.com/science/article/pii/S0143816623003536