• Acta Photonica Sinica
  • Vol. 51, Issue 6, 0623003 (2022)
Jiashun ZHANG1、2, Junming AN2、*, Bingli SUN3, Jun CHEN3, Yanzhang HU3, and Chongxin SHAN1
Author Affiliations
  • 1Henan Diamond Optoelectronic Materials and Devices Key Laboratory,School of Physics and Engineering,Zhengzhou University,Zhengzhou 450001,China
  • 2State Key Laboratory of Integrated Optoelectronics,Institute of Semiconductors,Chinese Academy of Sciences,Beijing 100083,China
  • 3Henan Key Laboratory of Optoelectronic Circuit and Integration,Henan Shi Jia Photons Technology Co.,Ltd,Hebi,Henan 458030,China
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    DOI: 10.3788/gzxb20225106.0623003 Cite this Article
    Jiashun ZHANG, Junming AN, Bingli SUN, Jun CHEN, Yanzhang HU, Chongxin SHAN. Fabrication of Silica Based Silicon 20 Channel Cyclic Arrayed Waveguide Grating[J]. Acta Photonica Sinica, 2022, 51(6): 0623003 Copy Citation Text show less
    References

    [1] Xun GUAN, Wei SHI, Jia LIU et al. Silicon photonics in optical access networks for 5G communications. IEEE Communications Magazine, 59, 126-131(2021).

    [2] K FOTIADIS, S PITRIS, M MORALIS-PEGIOS et al. Silicon photonic 16×16 cyclic AWGR for DWDM O-band interconnects. IEEE Photonics Technology Letters, 32, 1233-1236(2020).

    [3] B C LIN. Advanced crosstalk reduction in an N×N two-stage AWG-based switch with odd N - ScienceDirect. Optik, 225, 165656(2020).

    [4] H NISHI, T FUJI, N P DIAMANTOPOULOS et al. Integration of eight-channel directly modulated membrane-laser array and SiN AWG multiplexer on Si. Journal of Lightwave Technology, 37, 266-273(2019).

    [5] Xiaoping WU, Chenglu LIU, Wen LIU et al. Monolithic integrated cyclic 64-channel AWG with MZI filters and arrayed vertical reflecting mirrors for WDM-PON application. Applied Optics, 58, 8282-8289(2019).

    [6] Wenmin WANG, Wen LIU, Weidong MA. Novel compact low refractive index contrast silica-on-silicon AWG. Acta Photonica Sinica, 40, 1137-1142(2011).

    [7] Liangling WANG, Jiashun ZHANG, Junming AN et al. Same side arrayed waveguide grating multiplexer for data center transmitter. Acta Photonica Sinica, 50, 0123002(2021).

    [8] S KAMEI. Recent progress on athermal AWG wavelength multiplexer(2009).

    [9] A KANEKO, S KAMEI, Y INOUE et al. Athermal silica-based arrayed-waveguide grating (AWG) multiplexers with new low loss groove design(1999).

    [10] Tianhong ZHOU, Weidong MA. A novel fabrication approach for an athermal arrayed-waveguide grating. Journal of Semiconductors, 1, 39-41(2010).

    [11] K HIRABAYASHI, N KOSHOBU, J KOBAYASHI et al. Reduction of second-order temperature dependence of silica-based athermal AWG by using two resin-filled grooves. IEEE Photonics Technology Letters, 23, 676-678(2011).

    [12] G ITU-T(2018).

    [13] Wenmin WANG, Weidong MA, Guang CHEN et al. Optimum design of AWG router with flattened passband and low loss. Acta Photonica Sinica, 32, 1049-1052(2003).

    [14] S PATHAK, M VANSLEMBROUCK, P DUMON et al. Optimized silicon AWG with flattened spectral response using an MMI aperture. Journal of Lightwave Technology, 31, 87-93(2013).

    [15] Daoxin DAI, Weiquan MEI, Sailing HE. Using a tapered MMI to flatten the passband of an AWG. Optics Communications, 219, 233-239(2003).

    [16] S KAMEI, Y INOUE, T SHIBATA et al. Low-loss and compact silica-based athermal arrayed waveguide grating using resin-filled groove. Journal of Lightwave Technology, 27, 3790-3799(2009).

    Jiashun ZHANG, Junming AN, Bingli SUN, Jun CHEN, Yanzhang HU, Chongxin SHAN. Fabrication of Silica Based Silicon 20 Channel Cyclic Arrayed Waveguide Grating[J]. Acta Photonica Sinica, 2022, 51(6): 0623003
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