• Optoelectronics Letters
  • Vol. 18, Issue 7, 398 (2022)
Lidan LU1, Shuai WANG1, Zhoumo ZENG2, Mingli DONG1, and Lianqing ZHU1、*
Author Affiliations
  • 1School of Instrument Science and Opto Electronics Engineering, Beijing Information Science and Technology University, Beijing 100016, China
  • 2Department of Precision Instrument Engineering, Tianjin University, Tianjin 300072, China
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    DOI: 10.1007/s11801-022-1150-6 Cite this Article
    LU Lidan, WANG Shuai, ZENG Zhoumo, DONG Mingli, ZHU Lianqing. Single silicon waveguide MRR based Fano resonance in the whole spectral bands[J]. Optoelectronics Letters, 2022, 18(7): 398 Copy Citation Text show less
    References

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    [2] LIDE D R. A century of excellence in measurements, standards, and technology[M]. Boston:Government Printing Office, 2017:116-119.

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    [4] ZHOU X, ZHANG L, ARMANI A M, et al. On-chip biological and chemical sensing with reversed Fano lineshape enabled by embedded microring resonators[J]. IEEE journal of selected topics in quantum electronics, 2013, 20(3):35-44.

    [5] PENG F, WANG Z, YUAN G, et al. High-sensitivity refractive index sensing based on Fano resonances in a photonic crystal cavity-coupled microring resonator[J]. IEEE photonics journal, 2018, 10(2):1-8.

    [6] ZHANG J, LEROUX X, DURáN-VALDEIGLESIAS E, et al. Generating Fano resonances in a single-waveguide silicon nanobeam cavity for efficient electro-optical modulation[J]. ACS photonics, 2018, 5(11):4229-4237.

    [7] CHEN S, ZHOU G, ZHOU L, et al. High-linearity Fano resonance modulator using a microring-assisted Mach-Zehnder structure[J]. Journal of lightwave technology, 2020, 38(13):3395-3403.

    [8] MENG Z M, CHEN C B, QIN F. Theoretical investigation of integratable photonic crystal nanobeam all-optical switching with ultrafast response and ultralow switching energy[J]. Journal of physics D:applied physics, 2020, 53(20):205105.

    [9] YU Y, HEUCK M, HU H, et al. Fano resonance control in a photonic crystal structure and its application to ultrafast switching[J]. Applied physics letters, 2014, 105(6):061117.

    [10] ZHENG S, CAO X, WANG J. Multimode Fano resonances for low-power mode switching[J]. Optics letters, 2020, 45(4):1035-1038.

    [11] LU Y, XU L, YU Y, et al. Double-wavelength Fano resonance and enhanced coupled-resonator-induced transparency in a double-microcavity resonator system[J]. Journal of the optical society of America A, 2006, 23(7):1718-1721.

    [12] GU L, FANG L, FANG H, et al. Fano resonance lineshapes in a waveguide-microring structure enabled by an air-hole[J]. APL photonics, 2020, 5(1):016108.

    [13] LU L, ZHU L, ZENG Z, et al. Fano resonance ion sensor enabled by 2D plasmonic sub-nanopores-material[J]. IEEE sensors journal, 2021, 21(13):14776-14783.

    [14] WERQUIN S. Optimizations of a ring resonator biosensor platform for applications in DNA detection[D]. Ghent:Ghent University, 2015.

    LU Lidan, WANG Shuai, ZENG Zhoumo, DONG Mingli, ZHU Lianqing. Single silicon waveguide MRR based Fano resonance in the whole spectral bands[J]. Optoelectronics Letters, 2022, 18(7): 398
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