期刊文献+

InP基16通道200GHz阵列波导光栅的设计和制备 被引量:7

Design and Fabrication of 16 Channel 200 GHz InP Based Array Waveguide Gratings
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摘要 设计制作了一种适合单片光子集成回路的InP基16通道,200GHz通道间隔的阵列波导光栅(AWG)器件。采用偏振无关的深脊型波导以减小器件尺寸,提高光电子芯片的集成度。利用金属有机化学气相沉积(MOCVD),光刻及感应耦合反应离子束(ICP)刻蚀技术,成功研制出芯片样品。测试结果显示,器件插入损耗约-10dB,相邻通道串扰小于-15dB。 A 16-channel InP based array waveguide grating (AWG) with 200 GHz channel spacing is designed and fabricated for monolithic photonic integrated circuits. Polarization independent deep ridge waveguide is applied to reduce chip size and improve the integration level. By using the technologies of metal organic chemical vapor deposition (MOCVD), lithography and induced coupler plasma etching (ICP), the chip is fabricated in our laboratory successfully. The test results show that the insertion loss is about -10 dB, crosstalk is less than -15 dB.
出处 《光学学报》 EI CAS CSCD 北大核心 2013年第6期45-50,共6页 Acta Optica Sinica
基金 国家973计划(2010CB327603)资助课题
关键词 光学器件 磷化铟 阵列波导光栅 波分复用器 单片光子集成 optical devices InP array waveguide grating wavelength division multiplexer~ monolithic photonicintegrated circuits
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参考文献13

  • 1R.Nagarajan,C.H.Joyner,R.P.Schneider et al..Large-scale photonic integrated circuits [J].IEEE J.Sel.Top.Quantum Electron.,2005,11(1):50-65.
  • 2S.T.Ho,Y.Y.Huang,J.Ma.InP photonic integrated circuit and DWDM-on-chip technology [C].IEEE Avionics,Fiber-Optics and Photonics Technology Conference,2007.56-57.
  • 3P.Ecans,S.Corzine,M.Kato.Current view of large scale photonic integrated circuits on indium phosphide[C].Optical Fibre Communication,2010.OWD3.
  • 4J.Rahn,M.Kato,J.Pleumeekers.10 channels 45.6 Gb/s per channel,polarization-multiplexed DQPSK,InP receiver photonic integrated circuit [J].IEEE J.Lightwave.Technol.,2011,29(4):386-395.
  • 5S.Muthy,M.Kato,R.Nagarajan et al..Large scale photonic integrated circuit transmitters with monolithically integrated semiconductor optical amplifiers [C].Optical Fibre Communication,2008.OWE1.
  • 6H.Bissessur,P.PagnodRossiaux,R.Mestric et al..Extremely small polarization independent phased array demultiplexers on InP [J].IEEE Photon.Technol.Lett.,1996,8(4):544-546.
  • 7S.H.Wemple,M.DiDomentico.Behavior of electronic dielectric constant covalent and Ionic materials [J].Phys.Rev.B,1971,3(4):1338-1351.
  • 8J.Minch,S.H.Park,T.Keating et al..Theory and experiment of In1-xGaxAsyP1-y and In1-x-yGaxAlyAs long-wavelength strained quantum-well lasers [J].IEEE J.Quantum Electron.,1999,35(50):711-782.
  • 9孙淼,时尧成,戴道锌,刘柳.减小SiO_2光波导表面粗糙度的ICP干法刻蚀工艺研究[J].光学仪器,2007,29(1):71-74. 被引量:3
  • 10陈少武 徐学俊 屠晓光.硅基微纳光波导损耗特性的表征技术.光学学报,2009,29(1):134-138.

二级参考文献41

  • 1陈媛媛,夏金松,樊中朝,余金中.热氧化方法改善硅干法刻蚀波导的表面粗糙度[J].Journal of Semiconductors,2004,25(11):1544-1548. 被引量:1
  • 2[1]Hida Y, Hibino Y, Kitoh M T, et al. 400-channel 25-GHz spacing arrayed waveguide grating covering a full range of Cand L- bands. Proc OFC,2001:WB2
  • 3[2]Hibino Y. Recent advances in high-density and large-scale AWG muti/demulti-plexers with higher index-contrast silicabased PLCs. IEEE J Sel Topics Quantum Electroin, 2002,8(6):1090
  • 4[3]Kamalakis T, Sphicopoulos T, Syvridis D. An estimation of performance degradation due to fabrication errors in AWGs. J Lightwave Technol, 2002,20 (9):1779
  • 5[4]Lee C D,Chen Wei,Wang Qiang. The role of photomask resolution on the performance of arrayed-waveguide grating devices. J Lightwave Technol,2001,19(11):1726
  • 6[5]Chu Yuanliang,Zheng Xiaoping,Zhang Hanyi, et al. The impact of phase errors on arrayed waveguid gratings. IEEE J Sel Topics Quantum Electron,2002,8(6): 1122
  • 7[6]Munoz P,Pastor D,Capmany J,et al. Analytical and numerical analysis of phase and amplitude errors in the performance of arrayed waveguide gratings. IEEE J Sel Topics Quantum Electron, 2002,8(6) : 1130
  • 8[7]Adar R,Henry C H,Dragone C,et al. Broad-band array multiplexers made with silica waveguides on silicon. J Lightwave Technol, 1993,11 (2):212
  • 9[8]Kaneko A, Goh T, Yamada H, et al. Design and applications of silica-based planar lightwave circuits. IEEE J Sel Topics Quantum Electron, 1991,5(5): 1227
  • 10[9]Hadley G R, Smith R E. Full-vector waveguide modeling using an iterative finite-difference method with transparent boundary conditions. IEEE J Lightwave Technol, 1995, 13(3):465

共引文献16

同被引文献87

  • 1张冰娜,朱大庆,雷伟,曾四化.用B样条函数对S形弯曲波导进行结构优化[J].中国激光,2004,31(11):1312-1316. 被引量:4
  • 2郑宏林,陈福深.两种不同Y分支光波导的弯曲损耗研究[J].半导体光电,2005,26(1):30-33. 被引量:5
  • 3何忠蛟.硅基二氧化硅波导和SOI脊型波导应力双折射研究[J].光子学报,2006,35(2):201-204. 被引量:6
  • 4邱元武.硅光子学[J].激光与光电子学进展,2006,43(9):36-41. 被引量:3
  • 5Thomson D J, Gardes F Y, Fedeli J M, et al.. 50 Gb/s silicon optical modeulator [J]. IEEE Photon Technol Lett, 2012, 24 (4): 234-236.
  • 6Viven L, Polzer A, Marris-Morini D, et al.. Zero-bias 40 Gb/s germanium waveguide photodetector on silicon [J]. Opt Express, 2012, 20(2): 1096-1101.
  • 7Li C, Xue C, Liu Z, et al.. Zero-bias high-responsivity and high-bandwidth top-illuminated germanium p-i-n photodetectors [J]. Chin Phys B, 2014, 23(3): 038506.
  • 8Ding J, Chen H, Yang L, et al.. Ultra-low-power carrier-depletion Mach-Zehnder silicon optical modulator [J]. Opt Express, 2012, 20(7): 7081-7087.
  • 9Shi Y, Fu X, Dai D. Design and fabrication of a 200 GHz Si-nanowire-based reflective arrayed-waveguide grating (de) multiplexer with optimized photonic crystal reflectors [J]. Appl Opt, 2010, 49(26): 4859-4865.
  • 10Lia G, Zhenga X, Lexaub J, et al.. Ultralow-power silicon photonic interconnect for high-performance computing systems [C]. SPIE, 2010, 7607: 760703.

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