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Surface measuring coherence scanning interferometry beyond the specular reflection limit

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journal contribution
posted on 2021-11-09, 14:31 authored by Matthew Thomas, Rong Su, Peter De Groot, Jeremy CouplandJeremy Coupland, Richard Leach
The capability of optical surface topography measurement methods for measurement of steep and tilted surfaces is investigated through modelling of a coherence scanning interferometer. Of particular interest is the effect on the interference signal and measured topography when tilting the object at angles larger than the numerical aperture slope limit (i.e. the specular reflection limit) of the instrument. Here we use theoretical modelling to predict the results across a range of tilt angles for a blazed diffraction grating. The theoretically predicted interference patterns and surface height measurements are then verified directly with experimental measurements. Results illustrate the capabilities, limitations and modelling methods for interferometers to measure beyond the specular reflection limit.

Funding

Metrology for precision and additive manufacturing

Engineering and Physical Sciences Research Council

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European Union’s Horizon 2020 Research and Innovation Programme [grant number 734174]

European Metrology Programme for Innovation and Research [grant number 20IND07

Revisiting optical scattering with machine learning (SPARKLE)

Engineering and Physical Sciences Research Council

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History

School

  • Mechanical, Electrical and Manufacturing Engineering

Published in

Optics Express

Volume

29

Issue

22

Pages

36121 - 36131

Publisher

Optical Society of America

Version

  • VoR (Version of Record)

Rights holder

© the Journal

Publisher statement

This is an Open Access Article. It is published by Optical Society of America under the Creative Commons Attribution 4.0 Unported Licence (CC BY). Full details of this licence are available at: http://creativecommons.org/licenses/by/4.0/

Acceptance date

2021-08-24

Publication date

2021-10-19

Copyright date

2021

eISSN

1094-4087

Language

  • en

Depositor

Prof Jeremy Coupland. Deposit date: 8 November 2021

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