• Chinese Optics Letters
  • Vol. 19, Issue 10, 101402 (2021)
Xiufang Wang1, Lina Feng1, Peng Chen1、*, Zhen Huang2, and Ye Yuan3
Author Affiliations
  • 1College of Electrical and Information Engineering, Northeast Petroleum University, Daqing 163318, China
  • 2School of Physics Science and Technology, Lingnan Normal University, Zhanjiang 524048, China
  • 3School of Instrumentation Science and Engineering, Harbin Institute of Technology, Harbin 150001, China
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    DOI: 10.3788/COL202119.101402 Cite this Article Set citation alerts
    Xiufang Wang, Lina Feng, Peng Chen, Zhen Huang, Ye Yuan. Micro displacement reconstruction of self-mixing grating interferometer based on Littrow structure[J]. Chinese Optics Letters, 2021, 19(10): 101402 Copy Citation Text show less
    References

    [1] Z. Duan, Y. Yu, B. Gao, C. Jiang. Absolute distance measurement based on multiple self-mixing interferometry. Opt. Commun., 389, 270(2017).

    [2] C. Jiang, C. Li, Y. Wang. Improved transition detection algorithm for a self-mixing displacement sensor. Optik, 127, 5603(2016).

    [3] Z. Zhang, C. Li, Z. Huang. Vibration measurement based on multiple Hilbert transform for self-mixing interferometry. Opt. Commun., 436, 192(2019).

    [4] H. Zhen. Equivalent wavelength self-mixing interferometry for displacement measurement. Appl. Opt., 55, 7120(2016).

    [5] S. Amin, U. Zabit, O. D. Bernal, T. Hussain. High resolution laser self-mixing displacement sensor under large variation in optical feedback and speckle. IEEE Sens. J., 20, 9140(2020).

    [6] Y. Zhao, H. W. Zhang. Displacement measurement method based on laser self-mixing interference in the presence of speckle. Chin. Opt. Lett., 18, 051201(2020).

    [7] M. Usman, U. Zabit, O. D. Bernal, G. Raja. Blind identification of occurrence of multi-modality in laser-feedback-based self-mixing sensor. Chin. Opt. Lett., 18, 011201(2020).

    [8] T. Dong, B. Gao, Q. Chen, Y. Geng. Rotation velocity measurement based on self-mixing grating interferometer. Appl. Opt., 59, 5930(2020).

    [9] A. Magnani, D. Melchionni, A. Pesatori, M. Norgia. Self-mixing digital closed-loop vibrometer for high accuracy vibration measurements. Opt. Commun., 365, 133(2016).

    [10] A. Arasanz, F. J. Azcona, S. Royo, A. Jha, J. Pladellorens. A new method for the acquisition of arterial pulse wave using self-mixing interferometry. Opt. Laser Technol., 63, 98(2014).

    [11] I. Milesi, M. Norgia, P. P. Pompilio, C. Svelto, R. L. Dellaca. Measurement of local chest wall displacement by a custom self-mixing laser interferometer. IEEE Trans. Instrum. Meas., 60, 2894(2011).

    [12] S. Donati, M. T. Fathi. Transition from short-to-long cavity and from self-mixing to chaos in a delayed optical feedback laser. IEEE J. Quantum Electron., 48, 1352(2012).

    [13] B. P. Abbottet?al.. GW151226: observation of gravitational waves from a 22-solar-mass binary black hole coalescence. Phys. Rev. Lett., 116, 241103(2016).

    [14] Q. Chen, D. Lin, J. Wu, J. Yan, C. Yin. Straightness/coaxiality measurement system with transverse Zeeman dual-frequency laser. Meas. Sci. Technol., 16, 2030(2005).

    [15] C. F. Kao, S. H. Lu, H. M. Shen, K. C. Fan. Diffractive laser encoder with a grating in Littrow configuration. Jpn. J. Appl. Phys., 47, 1833(2008).

    [16] J. Y. Lee, H. Y. Chen, C. C. Hsu, C. C. Wu. Optical heterodyne grating interferometry for displacement measurement with subnanometric resolution. Sens. Actuators A Phys., 137, 185(2007).

    [17] T. Suzuki, R. Hioki. Translation of light frequency by a moving grating. J. Opt. Soc. Am., 57, 1551(1967).

    [18] C. C. Wu, C. C. Hsu, J. Y. Lee, Y. Z. Chen. Heterodyne common-path grating interferometer with Littrow configuration. Opt. Express, 21, 13322(2013).

    [19] J. Zhang, K. Iwata, A. Shibuya, H. Kikuta, C. S. Park. Method for calibrating system parameters of a multidirectional interferometers system. Appl. Opt., 45, 605(2006).

    [20] D. Guo, M. Wang. Note: design of a laser feedback interferometer with double diffraction system. Rev. Sci. Instrum., 86, 083111(2015).

    [21] D. Guo, M. Wang, H. Hao. Self-mixing grating interferometer: theoretical analysis and experimental observations. Interferometry XVIII(2016).

    [22] D. Guo, L. Shi, Y. Yu, W. Xia, M. Wang. Micro-displacement reconstruction using a laser self-mixing grating interferometer with multiple-diffraction. Opt. Express, 25, 31394(2017).

    [23] T. Bosch, N. Servagent, S. Donati. Optical feedback interferometry for sensing application. Opt. Eng., 40, 20(2001).

    [24] Y. Fan, B. Liu, Y. Yu, J. Xi, Q. Guo, J. Tong. Analysis on the transient of a self-mixing interferometry sensing system. Tencon 2015–2015 IEEE Region 10 Conference(2015).

    [25] C. Palmer. Diffraction Grating Handbook(2005).

    [26] F. Cheng, K. C. Fan. Linear diffraction grating interferometer with high alignment tolerance and high accuracy. Appl. Opt., 50, 4550(2011).

    [27] X. Wang, Y. Yuan, S. Luqing, B. Gao, P. Chen. Self-mixing interference displacement measurement under very weak feedback regime based on integral reconstruction method. Opt. Commun., 445, 236(2019).

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    Data from CrossRef

    [1] Shiwei Deng, Hua Shen. Influence of acousto-optic frequency shifter's thermal-induced birefringence on laser frequency-shifted feedback system. Optics and Lasers in Engineering, 160, 107290(2023).

    Xiufang Wang, Lina Feng, Peng Chen, Zhen Huang, Ye Yuan. Micro displacement reconstruction of self-mixing grating interferometer based on Littrow structure[J]. Chinese Optics Letters, 2021, 19(10): 101402
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