Title :
Nonperpendicular Incidence Induced Spatial Frequency Drift in Polarized Low-Coherence Interferometry and Its Compensation
Author :
Tiegen Liu ; Junfeng Shi ; Junfeng Jiang ; Kun Liu ; Shuang Wang ; Jinde Yin ; Shengliang Zou
Author_Institution :
Coll. of Precision Instrum. & Opto-Electron. Eng., Tianjin Univ., Tianjin, China
Abstract :
We establish an optical path difference (OPD) distribution model in a spatial scanned polarized low-coherence interferometry (LCI) considering the nonperpendicular incidence of light to explore the spatial frequency drift. Simulation shows that the OPD is no longer linearly distributed on a charged coupled device (CCD) and that the spatial frequency drifts approximately linearly as low coherent interference fringe (LCIF) shifts. A compensation process for spatial frequency domain analysis (SFDA)-based algorithm is proposed to avoid interference-order misidentification and consequent jump error. We verified our analysis and effectiveness of the proposed algorithm with an optical fiber Fabry-Pérot pressure sensing experiment. The measured spatial frequency drift agreed well with simulation results, and the interference-order misidentification was eliminated.
Keywords :
Fabry-Perot interferometers; compensation; pressure sensors; Fabry-Perot pressure sensing experiment; charged coupled device; compensation; compensation process; low coherent interference fringe shifts; nonperpendicular incidence induced spatial frequency drift; optical path difference distribution model; spatial frequency domain analysis; spatial scanned polarized low-coherence interferometry; Algorithm design and analysis; Approximation algorithms; Cavity resonators; Charge coupled devices; Demodulation; Frequency measurement; Optical fibers; Sensors; fiber optics system; novel methods; sensors;
Journal_Title :
Photonics Journal, IEEE
DOI :
10.1109/JPHOT.2015.2494505