Laser & Optoelectronics Progress, Volume. 61, Issue 19, 1913012(2024)

Integrated Photonic Engine Chips for Interferometric Fiber Optic Gyroscopes (Invited)

Weixi Liu1,2, Hengzhen Cao1, Chengfeng Wen1, Jiahao Wu1, Yuanchen Chen1, Daoxin Dai1,2, and Yaocheng Shi1,2、*
Author Affiliations
  • 1College of Optical Science and Engineering, Zhejiang University, Hangzhou 310027, Zhejiang ,China
  • 2International Research Center for Advanced Photonics, Zhejiang University, Haining Campus, Jiaxing 314499, Zhejiang , China
  • show less
    References(72)

    [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).

    Tools

    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

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    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)

    DOI:10.3788/LOP241584

    CSTR:32186.14.LOP241584

    Topics