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Sensors  2010 

A Comparison between Two Heterodyne Light Sources Using Different Electro-Optic Modulators for Optical Temperature Measurements at Visible Wavelengths

DOI: 10.3390/s101109609

Keywords: heterodyne interferometry, electro-optic modulator, optical temperature sensor

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Abstract:

In this paper we have successfully demonstrated a z-propagating Zn-indiffused lithium niobate electro-optic modulator used for optical heterodyne interferometry. Compared to a commercial buck-type electro-optic modulator, the proposed waveguide-type modulator has a lower driving voltage and smaller phase variation while measuring visible wavelengths of 532 nm and 632.8 nm. We also demonstrate an optical temperature measurement system using a homemade modulator. The results show that the measurement sensitivities are almost the same values of 25 deg/°C for both the homemade and the buck-type modulators for a sensing light with a wavelength of 632.8 nm. Because photorefractive impacts are essential in the buck-type modulator at a wavelength of 532 nm, it is difficult to obtain reliable phase measurements, whereas the stable phase operation of the homemade one allows the measurement sensitivity to be improved up to 30 deg/°C with the best measurement resolution at about 0.07 °C for 532 nm.

References

[1]  Lin, YJ; Pan, CL. Precision Displacement Measurement by Active Laser Heterodyne Interferometry. Appl. Opt?1991, 30, 1648–1652, doi:10.1364/AO.30.001648. 20700338
[2]  Lin, D; Yue, Z; Song, N; Meng, Y; Yin, C. A Double Common-Path Heterodyne Interferometer for the Measurement of Flying Height Modulation. Meas Sci Technol?2008, 19, 055303:1–055303:6.
[3]  Kuo, WC; Chou, C; Wu, HT. Optical Heterodyne Surface-Plasmon Resonance Biosensor. Opt. Lett?2003, 28, 1329–1331, doi:10.1364/OL.28.001329. 12906079
[4]  Wang, TJ; Hsieh, CW. Surface Plasmon Resonance Biosensor Based on Electro-Optically Modulated Phase Detection. Opt. Lett?2007, 32, 2834–2836, doi:10.1364/OL.32.002834. 17909589
[5]  Wang, SF; Chiu, MH; Lai, CW; Chang, RS. High-Sensitivity Small-Angle Sensor Based on Surface Plasmon Resonance Technology and Heterodyne Interferometry. Appl. Opt?2006, 45, 6702–6707, doi:10.1364/AO.45.006702. 16926900
[6]  Chen, KH; Chang, WY; Chen, JH. Measurement of the Pretilt Angle and the Cell Gap of Nematic Liquid Crystal Cells by Heterodyne Interferometry. Opt. Express?2009, 17, 14143–14149, doi:10.1364/OE.17.014143. 19654824
[7]  Gregor?i?, P; Po?ar, T; Mo?ina, J. Quadrature Phase-Shift Error Analysis Using a Homodyne Laser Interferometer. Opt. Express?2009, 17, 16322–16331, doi:10.1364/OE.17.016322. 19724631
[8]  Turek, I; Tarjányi, N. Investigation of Symmetry of Photorefractive Effect in Linbo3. Opt. Express?2007, 15, 10782–10788, doi:10.1364/OE.15.010782. 19547434
[9]  Heismann, F. Compact Electro-Optic Polarization Scramblers for Optically Amplified Lightwave System. J. Lightw. Technol?1996, 14, 1801–1814, doi:10.1109/50.532017.
[10]  Thaniyavarn, S. Wavelength Independent Optical Damage Immune Z-Propagation Linbo3 Waveguide Polarization Converter. Appl. Phys. Lett?1985, 47, 674–677, doi:10.1063/1.96425.
[11]  Twu, RC; Hong, HY; Lee, HH. An Optical Homodyne Technique to Measure Photorefractive-Induced Phase Drifts in Lithium Niobate Phase Modulator. Opt. Express?2008, 6, 4366–4374.
[12]  Zhang, Y; Pickrell, GR; Qi, B; Safaai-Jazi, A; Wang, A. Single-Crystal Sapphire Based Optical Polarimetric Sensor for High Temperature Measurement. Sensors?2006, 6, 823–834, doi:10.3390/s6080823.
[13]  Li, C; Dong, B; Ming, C; Lei, M. Application to Temperature Sensor Based on Green Up-Conversion of Er3+ Doped Silicate Glass. Sensors?2007, 7, 2652–2659, doi:10.3390/s7112652.
[14]  Coviello, G; Finazzi, V; Villatoro, J; Pruneri, V. Thermally Stabilized PCF-Based Sensor for Temperature Measurements up to 1000 °C. Opt. Express?2009, 17, 21551–21559, doi:10.1364/OE.17.021551. 19997396
[15]  Schlarb, U; Betzler, K. Refractive Indices of Lithium Niobate as a Function of Temperature, Wavelength, and Composition: A Generalized Fit. Phys. Rev. B?1993, 48, 15613–15620, doi:10.1103/PhysRevB.48.15613.
[16]  Crystal Technology Inc. Available online: http://www.crystaltechnology.com (accessed on 29 October 2010).
[17]  Aillerie, M; Fontana, MD; Abdi, F; Carabatos-Nedelec, C; Theofanous, N; Alexakis, G. Influence of the Temperature-Dependent Spontaneous Birefringence in the Electro-Optic Measurements of Linbo3. J. Appl. Phys?1989, 65, 2406–2408, doi:10.1063/1.342809.

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