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Nanometer-scale displacement sensing using self-mixing interferometry with a correlation-based signal processing technique
Authors:J. Hast  M. Okkonen  H. Heikkinen  L. Krehut  R. Myllylä
Affiliation:(1) Optoelectronics and Measurement Techniques Laboratory, Infotech Oulu, University of Oulu, 90014 Oulu, Finland
Abstract:A self-mixing interferometer is proposed to measure nanometre-scale optical path length changes in the interferometer’s external cavity. As light source, the developed technique uses a blue emitting GaN laser diode. An external reflector, a silicon mirror, driven by a piezo nanopositioner is used to produce an interference signal which is detected with the monitor photodiode of the laser diode. Changing the optical path length of the external cavity introduces a phase difference to the interference signal. This phase difference is detected using a signal processing algorithm based on Pearson’s correlation coefficient and cubic spline interpolation techniques. The results show that the average deviation between the measured and actual displacements of the silicon mirror is 3.1 nm in the 0–110 nm displacement range. Moreover, the measured displacements follow linearly the actual displacement of the silicon mirror. Finally, the paper considers the effects produced by the temperature and current stability of the laser diode as well as dispersion effects in the external cavity of the interferometer. These reduce the sensor’s measurement accuracy especially in long-term measurements.
Keywords:self-mixing interferometry  laser diode  external cavity  Pearson’  s correlation coefficient  cubic spline interpolation
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