• Title/Summary/Keyword: Traveling-wave type Coplanar Waveguide Electrode

Search Result 3, Processing Time 0.018 seconds

Optimization of traveling-wave electroabsorption modulator using FDTD method (FDTD를 이용한 진행파형 전계 흡수 광 변조기 최적화)

  • Ok, Seung-Hae;Lee, Seung-Jin;Kong, Soon-Cheol;Yun, Young-Seol;Choi, Young-Wan
    • Journal of the Institute of Electronics Engineers of Korea SD
    • /
    • v.39 no.7
    • /
    • pp.37-45
    • /
    • 2002
  • In this paper, the microwave characteristics of traveling-wave electroabsorption coplanar waveguide modulator have been analyzed and optimized precisely by using the 3-dimensional finite-difference time-domain method (FDTD). Microwave characteristics are affected by the thickness of intrinsic layer, the width of meas, and the distance between signal electrode and ground electrode on traveling-wave type structure. In case that intrinsic layers are composed of InAsP/InGaP (1.3Q), the optimized distance between signal electrode and ground electrode, the optimized intrinsic region thickness and the width of waveguide are founded to be $3{\mu}m,\;039{\mu}m\;and\;2{\mu}m$, respectively, to minimize microwave loss and to obtain velocity and impedance matched structure. By using the FDTD, we could design the traveling-wave electroabsorption modulator more precisely.

Electrode Analysis and Design of LiNbO$_{3}$ Optical Modulator with Coplanar Waveguide-type (COPLANAR WAVEGUIDE-형 LiNbO$_{3}$ 광변조기 전극설계 및 분석)

  • 김성구;윤형도;윤대원;유용택
    • Journal of the Korean Institute of Telematics and Electronics A
    • /
    • v.32A no.12
    • /
    • pp.80-90
    • /
    • 1995
  • In this paper, methods of designing CPW(coplanar waveguide) traveling-wave electrodes are described and their properties are discussed. Especially, the effect of buffer layer thickness to the microwave characteristics of the CPW electrodes are studied in detail. The trade-off relationship between buffer layer thickness and electro-optical properties of the devices are clearly revealde. The microwave characteristics and driving voltage can be further improved by using selected parameters suggested in this paper. To reduce time and effort in designing CPW electrode structure, exact analytical models are proposed.

  • PDF

LiNbO3 integrated optic devices with an UV-curable polymer buffer layer

  • Jeong, Woon-Jo;Kim, Seong-Ku;Park, Gye-Choon;Lee, Jin
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
    • /
    • 2002.05b
    • /
    • pp.111-118
    • /
    • 2002
  • A new lithium niobate optical modulator with a polymer buffer layer on Ni in-diffused optical waveguide is proposed for the fist time, successfully fabricated and examined at a wavelength of 1.3 mm. By determining the diffusion parameters of Ni in-diffused waveguide to achieve more desirable mode size which is well matched to the mode in the fiber, the detailed results on the achievement of high optical throughput are reported. In addition, the usefulness of polymer buffer layer which can be applicable to a buffer layer in Ni in-diffused waveguide devices is demonstrated. Several sets of channel waveguides fabricated on Z-cut lithium niobate by Ni in-diffusion were obtained and on which coplanar traveling-wave type electrodes with a polymer-employed buffer layer were developed by a conventional fabrication method for characterizing of electro-optical performances of the proposed device. The experimental results show that the measured half-wave voltage is of ~10 V and the total measured fiber-to-fiber insertion loss is of ~6.4 dB for a 40 mm long at a wavelength of =1.3 mm, respectively. From the experimental results, it is confirmed that the polymer-employed buffer layer in LiNbO3 optical modulator can be a substitute material instead of silicon oxide layer which is usually processed at a high temperature of over $300^{\circ}C$. Moreover, the fabrication tolerances by using polymer materials in LiNbO3 optical modulators are much less strict in comparison to the case of dielectric buffer layer.

  • PDF