Utilize este identificador para referenciar este registo: https://hdl.handle.net/10316/106729
Título: Continuous Hue-Based Self-Calibration of a Smartphone Spectrometer Applied to Optical Fiber Fabry-Perot Sensor Interrogation
Autor: Markvart, Aleksandr
Liokumovich, Leonid
Medvedev, Iurii 
Ushakov, Nikolai
Palavras-chave: optical fiber sensor; smartphone-based sensor interrogation; image processing; Fabry-Perot interferometer; spectral calibration; spectral interferometry; white-light interferometry; smartphone optical spectrometer
Data: 5-Nov-2020
Editora: MDPI
Projeto: Academic Excellence Project 5-100 proposed by Peter the Great St. Petersburg Polytechnic University, project # 4.2.1.2. 
Título da revista, periódico, livro ou evento: Sensors (Switzerland)
Volume: 20
Número: 21
Resumo: Smartphone-based optical spectrometers allow the development of a new generation of portable and cost-effective optical sensing solutions that can be easily integrated into sensor networks. However, most commonly the spectral calibration relies on the external reference light sources which have known narrow spectral lines. Such calibration must be repeated each time the fiber and diffraction grating holders are removed from the smartphone and reattached. Moreover, the spectrometer wavelength scale can drift during the measurement because of the smartphone temperature fluctuations. The present work reports on a novel spectral self-calibration approach, based on the correspondence between the light wavelength and the hue features of the spectrum measured using a color RGB camera. These features are caused by the nonuniformity of camera RGB filters' responses and their finite overlap, which is a typical situation for RGB cameras. Thus, the wavelength scale should be externally calibrated only once for each smartphone spectrometer and can further be continuously verified and corrected using the proposed self-calibration approach. An ability of the plug-and play operation and the temperature drift elimination of the smartphone spectrometer was experimentally demonstrated. Conducted experiments involved interrogation of optical fiber Fabry-Perot interferometric sensor and demonstrated a nanometer-level optical path difference resolution.
URI: https://hdl.handle.net/10316/106729
ISSN: 1424-8220
DOI: 10.3390/s20216304
Direitos: openAccess
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