Laser & Optoelectronics Progress, Volume. 61, Issue 19, 1913012(2024)
Integrated Photonic Engine Chips for Interferometric Fiber Optic Gyroscopes (Invited)
[3] Scheuer J, Yariv A. Sagnac effect in coupled-resonator slow-light waveguide structures[J]. Physical Review Letters, 96, 053901(2006).
[5] Lefèvre H C. Fundamentals of the interferometric fiber-optic gyroscope[J]. Optical Review, 4, A20(1997).
[12] MacKintosh J M, Culshaw B. Analysis and observation of coupling ratio dependence of Rayleigh backscattering noise in a fiber optic gyroscope[J]. Journal of Lightwave Technology, 7, 1323-1328(1989).
[14] Arianfard H, Juodkazis S, Moss D J et al. Sagnac interference in integrated photonics[J]. Applied Physics Reviews, 10, 011309(2023).
[15] Park J, Li X. Theoretical and numerical analysis of superluminescent diodes[J]. Journal of Lightwave Technology, 24, 2473-2480(2006).
[17] Shidlovski V R. Superluminescent diode light sources for OCT[M]. Optical coherence tomography: technology and applications, 281-299(2008).
[18] Gong Y J, Chen K, Bi R et al. Back-reflection in resonant fiber optic gyroscope and the suppression method[J]. Journal of Lightwave Technology, 40, 5736-5742(2022).
[19] Hu J Y, Liu S, Liu L et al. Closed-loop resonant fiber-optic gyroscope with a broadband light source[J]. Journal of Lightwave Technology, 41, 6088-6093(2023).
[20] Hu J Y, Liu S, Wang Y X et al. Compact resonant fiber-optic gyroscope with a broadband light source[C](2023).
[23] Yi X S, Wen X. Y-integrated optic chip (Y-IOC) applied in fiber optic gyro[J]. Proceedings of SPIE, 6344, 63440U(2006).
[24] Shibata N, Sasaki Y, Okamoto K et al. Fabrication of polarization-maintaining and absorption-reducing fibers[J]. Journal of Lightwave Technology, 1, 38-43(1983).
[26] Bauters J F, Heck M J R, John D et al. Ultra-low-loss (<0.1 dB/m) planar silica waveguide technology[C](2011).
[28] Horton M. Planar silicon nitride waveguide and silicon photonics integrated circuit for commercial optical gyroscope[J]. Proceedings of SPIE(2022).
[29] Zaoui W S, Kunze A, Vogel W et al. Bridging the gap between optical fibers and silicon photonic integrated circuits[J]. Optics Express, 22, 1277-1286(2014).
[30] Liu W X, Zhang J H, Liu L et al. High efficiency silicon edge coupler based on uniform arrayed waveguides with un-patterned cladding[J]. IEEE Photonics Technology Letters, 32, 1077-1080(2020).
[31] Luo Y N, Cai X L. Design of high efficiency grating coupler on X-cut thin-film lithium niobate[J]. Semiconductor Optoelectronics, 43, 280-284(2022).
[32] Yanikgonul S, Leong V, Ong J R et al. Integrated avalanche photodetectors for visible light[J]. Nature Communications, 12, 1834(2021).
[33] Vines P, Kuzmenko K, Kirdoda J et al. High performance planar germanium-on-silicon single-photon avalanche diode detectors[J]. Nature Communications, 10, 1086(2019).
[34] Liu H Z, Wang J Y, Guo D Q et al. Design and fabrication of high performance InGaAs near infrared photodetector[J]. Nanomaterials, 13, 2895(2023).
[35] Klamkin J, Zhao H W, Song B W et al. Indium phosphide photonic integrated circuits: technology and applications[C], 8-13(2018).
[36] Stopiński S, Jusza A, Piramidowicz R. Photonic integrated circuits for application in modern inertial measurement units[C], 27-28(2018).
[37] Mehta K, Dosunmu O, Merani P et al. High-power heterogeneously integrated III-V/silicon superluminescent diode[J]. IEEE Photonics Technology Letters, 35, 365-368(2023).
[38] Liu W X, Dai D X, Shi Y C. High-performance all-silicon polarizer with 415 nm bandwidth[J]. Optics Letters, 46, 1321-1324(2021).
[39] Liu W X, Wen C F, Lei C K et al. High performance polarizer on thin-film lithium niobate with width-tapered Euler bending[J]. Optics Letters, 49, 2337-2340(2024).
[40] Xu H N, Dai D X, Shi Y C. Anisotropic metamaterial-assisted all-silicon polarizer with 415-nm bandwidth[J]. Photonics Research, 7, 1432-1439(2019).
[41] Wang M Z, Yue J B, Yao Z T et al. Low-power and wide-band 1×8 silica waveguide optical switch[J]. Optics & Laser Technology, 171, 110380(2024).
[45] Guo Z Y, Jin J, Wang X W et al. Three-axis interferometric fiber optic gyroscope with silica integrated coupler chip[J]. IEEE Sensors Journal, 23, 9323-9332(2023).
[47] Chen G X, Liu L. High-performance electro-optical modulator based on thin-film lithium niobate (Invited)[J]. Acta Optica Sinica, 44, 1513001(2024).
[50] Zheng Y, Liu J Q, Chen H Y et al. Suppression of the quantization error in a fiber optic gyroscope using a double-electrode-pair multifunction integrated-optic circuit[J]. Optics Express, 27, 27028-27038(2019).
[55] Qiu J L, Wang L, Huang T C et al. Review of development of interferometric fiber-optic gyroscopes[J]. Acta Optica Sinica, 42, 1706004(2022).
[56] Blumenthal D J, Heideman R, Geuzebroek D et al. Silicon nitride in silicon photonics[J]. Proceedings of the IEEE, 106, 2209-2231(2018).
[58] Mao Y Z, He J, Xie L P et al. Silicon photonics integrated chip based optical fiber gyroscope[J]. Journal of Chinese Inertial Technology, 31, 202-206, 212(2023).
[60] Kabir M F, Mia M B, Ahmed I et al. Anisotropic leaky-like perturbation with subwavelength gratings enables zero crosstalk[J]. Light: Science & Applications, 12, 135(2023).
[61] Yang Y, Guo Y H, Huang Y J et al. Crosstalk reduction of integrated optical waveguides with nonuniform subwavelength silicon strips[J]. Scientific Reports, 10, 4491(2020).
[63] Wu B, Yu Y, Zhang X L. Mode-assisted silicon integrated interferometric optical gyroscope[J]. Scientific Reports, 9, 12946(2019).
[64] Huang H M, Cao Y W, Zhu L X et al. A polarization multiplexing interferometric fiber optic gyroscope with faraday effect and shupe effect compensation[J]. IEEE Sensors Journal, 24, 2844-2852(2024).
[66] Bischel W K, Kouchnir M A, Bitter M et al. Hybrid integration of fiber optic gyroscopes operating in harsh environments[J]. Proceedings of SPIE, 8164, 81640Q(2011).
[68] Srinivasan S, Moreira R, Blumenthal D et al. Design of integrated hybrid silicon waveguide optical gyroscope[J]. Optics Express, 22, 24988-24993(2014).
[69] Wang Y C, Lu S Y, Yen T H et al. Silicon photonics multi-function integrated optical circuit for miniaturized fiber optic gyroscope[J]. Journal of Lightwave Technology, 41, 6324-6332(2023).
[70] Shang K J, Lei M, Xiang Q et al. An integrated optical chip based miniature fiber optic gyroscope[J]. Journal of Chinese Inertial Technology, 28, 650-653(2020).
[71] Shang K J, Lei M, Li H W et al. Design, manufacturing, and future development of integrated fiber optic gyros[J]. Journal of Chinese Inertial Technology, 29, 502-509(2021).
[72] Kuo T J, Lu S Y, Chen W X et al. A silicon photonics multi-functional integrated optical circuit for interferometric fiber optics gyroscope[C](2023).
Get Citation
Copy Citation Text
Weixi Liu, Hengzhen Cao, Chengfeng Wen, Jiahao Wu, Yuanchen Chen, Daoxin Dai, Yaocheng Shi. Integrated Photonic Engine Chips for Interferometric Fiber Optic Gyroscopes (Invited)[J]. Laser & Optoelectronics Progress, 2024, 61(19): 1913012
Category: Integrated Optics
Received: Jul. 1, 2024
Accepted: Aug. 13, 2024
Published Online: Oct. 18, 2024
The Author Email: Yaocheng Shi (yaocheng@zju.edu.cn)
CSTR:32186.14.LOP241584