激光与光电子学进展, 2018, 55 (2): 020006, 网络出版: 2018-09-10   

光学相控阵技术研究进展 下载: 7404次

Research Progress of Optical Phased Array Technology
作者单位
1 中国科学院半导体研究所集成光电子学国家重点联合实验室, 北京 100083
2 中国科学院大学材料科学与光电技术学院, 北京 100049
引用该论文

颜跃武, 安俊明, 张家顺, 王亮亮, 尹小杰, 吴远大, 王玥. 光学相控阵技术研究进展[J]. 激光与光电子学进展, 2018, 55(2): 020006.

Yuewu Yan, Junming An, Jiashun Zhang, Liangliang Wang, Xiaojie Yin, Yuanda Wu, Yue Wang. Research Progress of Optical Phased Array Technology[J]. Laser & Optoelectronics Progress, 2018, 55(2): 020006.

参考文献

[1] Chao TH, Zhou HY, Reyes GF, et al. High-speed high-density holographic memory using electro-optic beam steering devices[C]. SPIE, 2002, 4803: 70- 73.

[2] Nikkhah H, Acoleyen K V, Baets R. Beam steering for wireless optical links based on an optical phased array in silicon[J]. Annals of Telecommunications, 2013, 68(1/2): 57-62.

[3] WinkerB, MahajanM, HunwardsenM. Liquid crystal beam directors for airborne free-space optical communications[C]. Aerospace Conference, 2004, 3: 631- 634.

[4] 闫舟, 徐景. 光束扫描技术研究进展[J]. 光电技术应用, 2013, 28(4): 1-9.

    Yan Z, Xu J. Research development of beam scanning technology[J]. Electro-Optic Technology Application, 2013, 28(4): 1-9.

[5] 闫爱民, 职亚楠, 孙建锋, 等. 光学相控阵扫描技术研究进展[J]. 激光与光电子学进展, 2011, 48(10): 102801.

    Yan A M, Zhi Y N, Sun J F, et al. Recent development of optical phased array scanning technology[J]. Laser & Optoelectronics Progress, 2011, 48(10): 102801.

[6] 瞿荣辉, 叶青, 董作人, 等. 基于电光材料的光学相控阵技术研究进展[J]. 中国激光, 2008, 12(12): 1861-1867.

    Qu R H, Ye Q, Dong Z R, et al. Progress of optical phased array technology based on electro-optic material[J]. Chinese Journal of Lasers, 2008, 35(12): 1861-1867.

[7] Meyer R A. Optical beam steering using a multichannel lithium tantalate crystal[J]. Applied Optics, 1972, 11(3): 613-616.

[8] McManamon P F, Dorschner T A, Corkum D L, et al. . Optical phased array technology[J]. Proceedings of the IEEE, 1996, 84(2): 268-298.

[9] InagakiK, KarasawaY. Fiber-type optical phased array antenna-two dimensional beam steering and coherent power combining[C]. Ninth International Conference on Antennas and Propagation, 1995, 1: 1- 8.

[10] Acoleyen K V, Bogaerts W, Jagerska J, et al. Off-chip beam steering with a one-dimensional optical phased array on silicon-on-insulator[J]. Optics Letters, 2009, 34(9): 1477-1479.

[11] Acoleyen K V, Rogier H, Baets R. Two-dimensional optical phased array antenna on silicon-on-insulator[J]. Optics Express, 2010, 18(13): 13655-13660.

[12] Acoleyen K V, Komorowska K, Bogaerts W, et al. One-dimensional off-chip beam steering and shaping using optical phased arrays on silicon-on-insulator[J]. Journal of Lightwave Technology, 2011, 29(23): 3500-3505.

[13] Doylend J K. Heck M J R, Bovington J T, et al. Two-dimensional free-space beam steering with an optical phased array on silicon-on-insulator[J]. Optics Express, 2011, 19(22): 21595-21604.

[14] Kwong D, Hosseini A, Zhang Y, et al. 1×12 Unequally spaced waveguide array for actively tuned optical phased array on a silicon nanomembrane[J]. Applied Physics Letters, 2011, 99(5): 051104.

[15] Wight D R, Heaton J M, Hughes B T, et al. Novel phased array optical scanning device implemented using GaAs/AlGaAs technology[J]. Applied Physics Letters, 1991, 59(8): 899-901.

[16] Vasey F, Reinhart F K, Houdre R, et al. Spatial optical beam steering with an AlGaAs integrated phased array[J]. Applied Optics, 1993, 32(18): 3220-3232.

[17] 李家立. 光波导光学相控阵技术研究[D]. 西安: 西安电子科技大学, 2005.

    Li JL. Study on waveguide optical phased array technology[D]. Xi'an:Xidian University, 2005.

[18] Sun J, Timurdogan E, Yaacobi A, et al. Large-scale nanophotonic phased array[J]. Nature, 2013, 493(7431): 195-199.

[19] Kwong D, Hosseini A, Covey J, et al. On-chip silicon optical phased array for two-dimensional beam steering[J]. Optics Letters, 2014, 39(4): 941-944.

[20] Yaacobi A, Sun J, Moresco M, et al. Integrated phased array for wide-angle beam steering[J]. Optics Letters, 2014, 39(15): 4575-4578.

[21] Poulton CV, YaccobiA, SuZ, et al. Optical phased array with small spot size, high steeringrange and grouped cascaded phase shifters[C]. Integrated Photonics Research, Silicon and Nanophotonics, 2016: IW1B-2.

[22] Rabinovich W S, Goetz P G, Pruessner M W, et al. Two-dimensional beam steering using a thermo-optic silicon photonic optical phased array[J]. Optical Engineering, 2016, 55(11): 111603.

[23] MahonR, Preussner MW, Rabinovich WS, et al. Two dimensional thermo-optic beam steering using a silicon photonic optical phased array[C]. SPIE, 2016, 9739: 97390R.

[24] Hutchison D N, Sun J, Doylend J K, et al. High-resolution aliasing-free optical beam steering[J]. Optica, 2016, 3(8): 887-890.

[25] Nester W. A study of tracking accuracy in monopulse phased arrays[J]. IRE Transactions on Antennas and Propagation, 1962, 10(3): 237-246.

[26] Nguyen L V T. Optical RF phase shifter design employing optical phase manipulation and coherent detection part I: concept proposal[J]. International Journal of Microwave and Optical Technology, 2011, 6(5): 301-309.

[27] Ng W, Walston A A, Tangonan G L, et al. The first demonstration of an optically steered microwave phased array antenna using true-time-delay[J]. Journal of Lightwave Technology, 1991, 9(9): 1124-1131.

[28] Sullivan CT, Mukherjee SD, Hibbs-brenner M K. Switched time-delay elements based on AlGaAs/GaAs optical waveguide technology at 1.32 μm for optically controlled phased-array antennas[C]. SPIE, 1992, 1703: 264- 271.

[29] Ng W W, Yap D, Narayanan A A. GaAs andsilica-based integrated time-shift network for phased arrays[J]. SPIE, 1994, 2155: 114-123.

[30] Roeloffzen C GH, MeijerinkA, ZhuangL, et al. Integrated photonic beam former employing continuously tunable ring resonator-based delays in CMOS-compatible LPCVD waveguide technology[C]. SPIE, 2008, 7135: 1- 11.

[31] Jun B, Yao J. A two-dimensional optical true time-delay beam former consisting of a fiber Bragg grating prism and switch-based fiber-optic delay lines[J]. IEEE Photonics Technology Letters, 2009, 21(10): 627-629.

[32] Zhou B, Zheng X, Yu X, et al. Optical beam forming networks based on broadband optical source and chirped fiber grating[J]. IEEE Photonics Technology Letters, 2008, 20(9): 733-735.

[33] 高瑜翔. 光控相控阵列系统及其关键技术研究[D]. 成都: 电子科技大学, 2006.

    GaoYuxiang. High-temperature control phased array system and its key technology research[D]. Chengdu: University of Electronic Science and Technology, 2006.

[34] 邱志成. 高精度光纤延时技术研究[D]. 成都: 电子科技大学, 2009.

    Qiu ZC. Study on high precision optical fiber delay technology[D]. Chengdu: University of Electronic Science and Technology, 2009.

[35] Zhang Y M, Wu H, Zhu D, et al. An optically controlled phased array antenna based on single sideband polarization modulation[J]. Optics Express, 2014, 22(4): 3761-3765.

[36] 中国电子科技集团第十四研究所. 中国电科14所智能感知实验室联合南航成功研制微波光子实时成像系统[EB/OL]. ( 2017- 05- 18). . http://14.cetc.com.cn/14/338565/338541/470089/index.html

[37] Wang L L, An J M, Wu Y D, et al. Design and fabrication of novel symmetric low-loss 1×24 optical power splitter[J]. Journal of Lightwave Technology, 2014, 32(18): 3112-3118.

[38] 安俊明, 张家顺, 王玥, 等. 硅光子中波分复用技术研究[J]. 激光与光电子学进展, 2014, 51(11): 110006.

    An J M, Zhang J S, Wang Y, et al. Study on wavelength division multiplexer for silicon photonics[J]. Laser & Optoelectronics Progress, 2014, 51(11): 110006.

[39] Koh K H, Lee C K. A two-dimensional MEMS scanning mirror using hybrid actuation mechanisms with low operation voltage[J]. Journal of Microelectromechanical Systems, 2012, 21(5): 1124-1135.

[40] Yoo B W, Megens M, Chan T, et al. Optical phased array using high contrast gratings for two dimensional beamforming and beamsteering[J]. Optics Express, 2013, 21(10): 12238-12248.

[41] Yoo B W, Megens M, Sun T B, et al. A 32×32 optical phased array using polysilicon sub-wavelength high-contrast-grating mirrors[J]. Optics Express, 2014, 22(16): 19029-19039.

[42] Yang W J, Sun T B, Rao Y, et al. High speed optical phased array using high contrast grating all-pass filters[J]. Optics Express, 2014, 22(17): 20038-20044.

[43] Engstrom D. O'Callaghan M J, Walker C, et al. Fast beam steering with a ferroelectric-liquid-crystal optical phased array[J]. Applied Optics, 2009, 48(9): 1721-1726.

[44] 梁磊. 有机无机复合波导热光开关的优化设计与制备[D]. 长春: 吉林大学, 2014.

    LiangL. Optimum design and preparation of thermo-optical switch based on organic and inorganic composites[D]. Changchun: Jilin University, 2014.

[45] HaldarR, Banik AD, Sanathanan MS, et al. Compact athermal electro-optic modulator design based on SOI off-axis microring resonator[C]. 2014 Conference on Lasers and Electro-Optics, 2014: JW2A. 37.

[46] 雷锋网. 技术解析: Velodyne VS Quanergy固态激光雷达哪家强[EB/OL]. ( 2017-01-16). https://www.leiphone.com/news/201701/zv1OzRGNh5JWd T05.html.

[47] 雷锋网. 廉价化激光雷达的希望: MEMS激光雷达VS固态激光雷达[EB/OL]. ( 2017-03-31). https://www.leiphone.com/news/201703/hp0uSR2f4u6VB O0M.html.

[48] HajimiriA, AbiriB, FatemiR. An 8x8 heterodyne lens-less OPA camera[C]. CLEO: Applications and Technology, 2017: JW2A. 9.

颜跃武, 安俊明, 张家顺, 王亮亮, 尹小杰, 吴远大, 王玥. 光学相控阵技术研究进展[J]. 激光与光电子学进展, 2018, 55(2): 020006. Yuewu Yan, Junming An, Jiashun Zhang, Liangliang Wang, Xiaojie Yin, Yuanda Wu, Yue Wang. Research Progress of Optical Phased Array Technology[J]. Laser & Optoelectronics Progress, 2018, 55(2): 020006.

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