• Chinese Optics Letters
  • Vol. 20, Issue 9, 090501 (2022)
Guoqing Ma1、2, Changhe Zhou1、2, Yongfang Xie3, Ge Jin3, Rongwei Zhu1、2, Jin Zhang1, Junjie Yu1、2、*, and Guohai Situ1、2、**
Author Affiliations
  • 1Laboratory of Information Optics and Optoelectronic Technology, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
  • 2Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, China
  • 3Institute of Photonics Technology, Jinan University, Guangzhou 510000, China
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    DOI: 10.3788/COL202220.090501 Cite this Article Set citation alerts
    Guoqing Ma, Changhe Zhou, Yongfang Xie, Ge Jin, Rongwei Zhu, Jin Zhang, Junjie Yu, Guohai Situ. Double-groove rectangular gratings for high-efficiency wideband vertical coupling in planar-integrated optical systems[J]. Chinese Optics Letters, 2022, 20(9): 090501 Copy Citation Text show less
    References

    [1] M. A. Taubenblatt. Optical interconnects for high-performance computing. J. Light. Technol., 30, 448(2012).

    [2] G. Wetzstein, A. Ozcan, S. Gigan, S. Fan, D. Englund, M. Soljačić, C. Denz, D. Miller, D. Psaltis. Inference in artificial intelligence with deep optics and photonics. Nature, 588, 39(2020).

    [3] W. Bogaerts, D. Pérez, J. Capmany, D. Miller, J. Poon, D. Englund, F. Morichetti, A. Melloni. Programmable photonic circuits. Nature, 586, 207(2020).

    [4] C. Li, X. Zhang, J. Li, T. Fang, X. Dong. The challenges of modern computing and new opportunities for optics. PhotoniX, 2, 20(2021).

    [5] Y. Shen, N. Harris, S. Skirlo, M. Prabhu, T. Baehr-Jones, M. Hochberg, X. Sun, S. Zhao, H. Larochelle, D. Englund, M. Soljačić. Deep learning with coherent nanophotonic circuits. Nat. Photonics, 11, 441(2017).

    [6] J. Feldmann, N. Youngblood, M. Karpov, H. Gehring, X. Li, M. Stappers, M. Le Gallo, X. Fu, A. Lukashchuk, A. S. Raja, J. Liu, C. D. Wright, A. Sebastian, T. J. Kippenberg, W. H. P. Pernice, H. Bhaskaran. Parallel convolutional processing using an integrated photonic tensor core. Nature, 589, 52(2021).

    [7] B. Shastri, A. Tait, T. Lima, W. Pernice, H. Bhaskaran, C. Wright, P. Prucnal. Photonics for artificial intelligence and neuromorphic computing. Nat. Photonics, 15, 102(2021).

    [8] X. Lin, Y. Rivenson, N. T. Yardimci, M. Veli, M. Jarrahi, A. Ozcan. All-optical machine learning using diffractive deep neural networks. Science, 361, 1004(2018).

    [9] T. Zhou, L. Fang, T. Yan, J. Wu, Y. Li, J. Fan, H. Wu, X. Lin, Q. Dai. In situ optical backpropagation training of diffractive optical neural networks. Photonics Res., 8, 940(2020).

    [10] T. Zhou, X. Lin, J. Wu, Y. Chen, H. Xie, Y. Li, J. Fan, H. Wu, L. Fang, Q. Dai. Large-scale neuromorphic optoelectronic computing with a reconfigurable diffractive processing unit. Nat. Photonics, 15, 367(2021).

    [11] A. Ryou, J. Whitehead, M. Zhelyeznyakov, P. Anderson, C. Keskin, M. Bajcsy, A. Majumdar. Free-space optical neural network based on thermal atomic nonlinearity. Photonics Res., 9, B128(2021).

    [12] D. Pierangeli, G. Marcucci, C. Conti. Photonic extreme learning machine by free-space optical propagation. Photonics Res., 9, 1446(2021).

    [13] G. Matthias, J. Jürgen, S. Stefan. Planar-integrated optical vector-matrix multiplier. Appl. Opt., 39, 5367(2000).

    [14] M. Gladys, G. Matthias, J. Jürgen, L. Jesús. Achromatic optical Fourier transformer with planar-integrated free-space optics. Appl. Opt., 44, 229(2005).

    [15] R. Heming, L. Wittig, P. Dannberg, J. Jahns, E. Kley, M. Gruber. Efficient planar-integrated free-space optical interconnects fabricated by a combination of binary and analog lithography. J. Light. Technol., 26, 14(2008).

    [16] H. Ma, H. Yang, B. Tang, M. Wei, J. Li, J. Wu, P. Zhang, C. Sun, L. Li, H. Lin. Passive devices at 2 µm wavelength on 200 mm CMOS-compatible silicon photonics platform [Invited]. Chin. Opt. Lett., 19, 071301(2021).

    [17] R. Ge, H. Li, Y. Han, L. Chen, J. Xu, M. Wu, Y. Li, Y. Luo, X. Cai. Polarization diversity two-dimensional grating coupler on x-cut lithium niobate on insulator. Chin. Opt. Lett., 19, 060006(2021).

    [18] N. Hoppe, W. Zaoui, L. Rathgeber, Y. Wang, R. Klenk, W. Vogel, M. Kaschel, S. Portalupi, J. Burghartz, M. Berroth. Ultra-efficient silicon-on-insulator grating couplers with backside metal mirrors. IEEE J. Quantum Electron., 26, 0001801(2020).

    [19] J. Xiong, E. Hsiang, Z. He, T. Zhan, S. Wu. Augmented reality and virtual reality displays: emerging technologies and future perspectives. Light Sci. Appl., 10, 216(2021).

    [20] M. Tian, M. Qu, L. Wu, X. Cheng. Progress on asymmetrical grating couplers for vertical coupling. Laser Optoelectron. Prog., 58, 0500004(2021).

    [21] J. N. Mait, D. W. Prather, M. S. Mirotznik. Design of binary subwavelength diffractive lenses by use of zeroth-order effective-medium theory. J. Opt. Soc. Am. A, 16, 1157(1999).

    [22] J. Xu, S. Yang, L. Wu, L. Xu, Y. Li, R. Liao, M. Qu, X. Quan, X. Cheng. Design and fabrication of a high-performance binary blazed grating coupler for perfectly perpendicular coupling. Opt. Express, 29, 42999(2021).

    [23]

    [24] Y. Ding, R. Magnusson. Resonant leaky-mode spectral-band engineering and device applications. Opt. Express, 12, 5661(2004).

    [25] L. Sun, Z. Lv, W. Wu, W. Liu, J. Yuan. Double-grating polarizer for terahertz radiation with high extinction ratio. Appl. Opt., 49, 2066(2010).

    [26] J. Wu, C. Zhou, H. Cao, A. Hu, J. Yu, W. Sun, W. Jia. Beam splitting of a double-groove fused-silica grating under normal incidence. J. Opt., 13, 115703(2011).

    [27] K. Ito, H. Lizuka. Highly efficient -1st-order reflection in Littrow mounted dielectric double-groove grating. AIP Adv., 3, 062119(2013).

    [28] J. Wu. Enhanced light trapping with double-groove grating in thin-film amorphous silicon solar cells. Opt. Laser Tech., 79, 95(2016).

    [29] Y. Liu, J. Feng, Z. Li, J. Luo, T. Kou, S. Yuan, M. Li, Y. Liu, Y. Peng, S. Wang. Double-groove terahertz chirped grating waveguide tube for gas pressure detection. Laser Phys. Lett., 16, 056202(2019).

    [30] P. Laakkonen, S. Siitonen, M. Kuittinen. Double-groove, two-depth grating coupler for light guides. J. Opt. Soc. Am. A., 23, 3156(2006).

    [31] M. Oliva, D. Michaelis, T. Benkenstein, J. Dunkel, J. Harzendorf, A. Matthes, U. D. Zeitner. Highly efficient three-level blazed grating in the resonance domain. Opt. Lett., 35, 2774(2010).

    [32] H. Iizuka, N. Engheta, H. Fujikawa, K. Sato, Y. Takeda. Role of propagating modes in a double-groove grating with a +1st-order diffraction angle larger than the substrate–air critical angle. Opt. Lett., 35, 3973(2010).

    [33] T. Matsui, A. Miura, N. Ikeda, H. Fujikawa, Y. Sugimoto, N. Engheta, H. Iizuka. Experimental investigation of double-groove grating satisfying total internal reflection condition. Opt. Express., 22, 25362(2014).

    [34] D. T. Pierce, W. E. Spicer. Electronic structure of amorphous Si from photoemission and optical studies. Phys. Rev. B, 5, 3017(1972).

    [35] T. Levola. Diffractive optics for virtual reality displays. J. Soc. Inf. Disp., 14, 467(2006).

    [36] H. Mukawa. A full-color eyewear display using planar waveguides with reflection volume holograms. J. Soc. Inf. Disp., 17, 185(2009).

    [37] Z. Liu, C. Pan, Y. Pang, Z. Huang. A full-color near-eye augmented reality display using a tilted waveguide and diffraction gratings. Opt. Commun., 431, 45(2019).

    [38] M. G. Moharam, T. K. Gaylord. Rigorous coupled-wave analysis of planar-grating diffraction. J. Opt. Soc. Am., 71, 811(1981).

    [39] M. G. Moharam, Eric B. Grann, Drew A. Pommet, T. K. Gaylord. Formulation for stable and efficient implementation of the rigorous coupled-wave analysis of binary gratings. J. Opt. Soc. Am. A, 12, 1068(1995).

    [40] X. Xiang, M. Li, C. Wei, C. Zhou. Precision fringe period metrology using an LSQ sine fit algorithm. Appl. Opt., 57, 4777(2018).

    [41] W. C. Chuang, C. T. Ho, W. C. Wang. Fabrication of a high-resolution periodical structure using a replication process. Opt. Express, 13, 6685(2005).

    [42] K. J. Byeon, H. Lee. Recent progress in direct patterning technologies based on nano-imprint lithography. EPJ Appl. Phys., 59, 10001(2012).

    Data from CrossRef

    [1] 马国庆 Ma Guoqing, 周常河 Zhou Changhe, 朱镕威 Zhu Rongwei, 郑奉禄 Zheng Fenglu, 余俊杰 Yu Junjie, 司徒国海 Situ Guohai. 光计算的发展趋势:模拟或数字?. Chinese Journal of Lasers, 50, 0500001(2023).

    Guoqing Ma, Changhe Zhou, Yongfang Xie, Ge Jin, Rongwei Zhu, Jin Zhang, Junjie Yu, Guohai Situ. Double-groove rectangular gratings for high-efficiency wideband vertical coupling in planar-integrated optical systems[J]. Chinese Optics Letters, 2022, 20(9): 090501
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