AWG-based large dynamic range fiber Bragg grating interrogation system

WANG T, LIU K, JIANG J, et al. Temperature-insensitive refractive index sensor based on tilted moire FBG with high resolution[J]. Optics express, 2017, 25(13): 14900–14909.

Article  ADS  Google Scholar 

CULSHAW B, KERSEY A. Fiber-optic sensing: a historical perspective[J]. Journal of lightwave technology, 2008, 26(9): 1064–1078.

Article  ADS  Google Scholar 

LEAL-JUNIOR A G, DIAZ C A R, AVELLAR L M, et al. Polymer optical fiber sensors in healthcare applications: a comprehensive review[J]. Sensors (Basel), 2019, 19(14).

LI K, DONG M L, YUAN P, et al. Review of fiber Bragg grating interrogation techniques based on array waveguide gratings[J]. Acta physica sinica, 2022, 71(9): 094207.

Article  Google Scholar 

LI H, GAO W, LI E, et al. Investigation of ultrasmall 1×N AWG for SOI-based AWG demodulation integration microsystem[J]. IEEE photonics journal, 2015, 7(6): 1–7.

Google Scholar 

LI H, MA X, CUI B, et al. Chip-scale demonstration of hybrid III–V/silicon photonic integration for an FBG interrogator[J]. Optica, 2017, 4(7): 692–700.

Article  ADS  Google Scholar 

LI K, YUAN P, LU L, et al. PLC-based arrayed waveguide grating design for fiber Bragg grating interrogation system[J]. Nanomaterials (Basel), 2022, 12(17): 2938.

Article  Google Scholar 

LI S, YUAN P, LI T, et al. SOI-based 15-channel arrayed waveguide grating design for fiber Bragg grating interrogator[J]. Photonics and nanostructures-fundamentals and applications, 2023, 53.

MARIN Y E, NANNIPIERI T, OTON C J, et al. Current status and future trends of photonic-integrated FBG interrogators[J]. Journal of lightwave technology, 2018, 36(4): 946–953.

Article  ADS  Google Scholar 

MENDOZA E A, ESTERKIN Y, KEMPEN C, et al. Multi-channel monolithic integrated optic fiber Bragg grating sensor interrogator[J]. Photonic sensors, 2011, 1(3): 281–288.

Article  ADS  Google Scholar 

SU H, HUANG X G. A novel fiber Bragg grating interrogating sensor system based on AWG demultiplexing [J]. Optics communications, 2007, 275(1): 196–200.

Article  ADS  Google Scholar 

VIVIEN L, HONKANEN S, PAVESI L, et al. Design, integration, and testing of a compact FBG interrogator, based on an AWG spectrometer[J]. Proceedings of SPIE, 2014, 9133: 91330D.

Article  ADS  Google Scholar 

WANG H, TAO C, GAO X, et al. Detection of dynamic strain using an SOA-fiber ring laser and an arrayed waveguide grating demodulator[J]. Optoelectronics letters, 2022, 18(6): 331–337.

Article  ADS  Google Scholar 

WENG S, YUAN P, ZHUANG W, et al. SOI-based multi-channel AWG with fiber Bragg grating sensing interrogation system[J]. Photonics, 2021, 8(6): 214.

Article  ADS  Google Scholar 

JI S, LI K, YUAN P, et al. Design and fabrication of AWG with large bandwidth applied in FBG interrogation system[J]. Optics & laser technology, 2022, 149: 107372.

Article  Google Scholar 

YUAN P, WENG S, JI S, et al. Performance analysis of fiber Bragg grating sensor interrogators based on arrayed waveguide gratings[J]. Optical engineering, 2021, 60(06): 066101.

Article  ADS  Google Scholar 

PUSTAKHOD D, KLEIJN E, WILLIAMS K, et al. High-resolution AWG-based fiber Bragg grating interrogator[J]. IEEE photonics technology letters, 2016, 28(20): 2203–2206.

Article  ADS  Google Scholar 

WENG S, YUAN P, LU L, et al. SOI-based arrayed waveguide grating with extended dynamic range for fiber Bragg grating interrogator[J]. Optical fiber technology, 2022, 68(8): 102815.

Article  Google Scholar 

MENDOZA J P, KEMPEN C, SUN S, et al. Fully integrated miniature multi-point fiber Bragg grating sensor interrogator (FBG-transceiver) system for applications where size, weight, and power are critical for operation[C]//6th European Workshop on Structural Health Monitoring (EWSHM 2012), July 3–6, 2012, Dresden, Germany. Berlin, Heidelberg: Springer-Verlag, 2012.

Google Scholar 

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