• Title/Summary/Keyword: 미세 광학벤치

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Tolerance Design of Position Accuracy of Optical components by Statistical Design of Experiment (통계적 실험 계획법을 이용한 광학 부품의 위치 정밀도 허용오차 설계)

  • 황병철;박헌용;이재영;이승걸;오범환;이일항;박세근;최두선
    • Proceedings of the Optical Society of Korea Conference
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    • 2003.02a
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    • pp.308-309
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    • 2003
  • 최근 광통신의 발전은 광 통신 소자의 제작시 집적화, 소형화, 경량화 그리고 저가격화를 원하게 되었다. 이러한 문제점을 해결하기 위해, 기판 위에 광소자를 집적하는 미세 광학 벤치 (Micro Optical Bench)에 대한 많은 연구가 진행되고 있는 중이다. MEMS(Micro Electro Mechanical System) 공정기술인 벌크(bulk) 마이크로 머시닝 기술을 이용함으로서 하나의 기판 위에 광소자들을 조립하는 미세 광학 벤치를 구현 할 수 있다. (중략)

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Thermo-Optic Tunable Filter and Packaging for Micro-Optical Bench (열광학 효과를 이용한 파장 가변 필터와 미세광학벤치를 이용한 패키징)

  • 박헌용;황병철;이승걸;오범환;이일항;박세근
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 2003.06a
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    • pp.203-206
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    • 2003
  • Thermo-optic tunable filter, with 4-pairs of H/L layers for DBR, was designed and fabricated. The transmittance characteristics of the filter were measured. Additionally, heating system and temperature sensor system were used in order to observe property of the filter by thermo-optic effect. The tuning efficiency of the filter was measured to be 0.144nm/K$^{-1}$ showing the tuning range of 9.4nm for the temperature variation of 64.7$^{\circ}C$. Filter, lens and fiber were aligned by micro-optical bench.

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Tolerance design of position accuracy of optical components for micro optical system (마이크로 광 시스템 구현을 위한 광학 부품의 위치 정밀도 허용오차 설계)

  • 이재영;황병철;박헌용;박세근;이승걸;오범환;이일항;최두선
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.41 no.7
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    • pp.13-20
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    • 2004
  • In order to set up the design of micro optical bench, optical coupling efficiencies of two sets of test benches are calculated. Simple linear connections of incoming and outgoing optical fibers with and without ball lenses are designed. Positional errors that are possible in actual fabrication processes we considered in the calculations and their tolerances are determined from -3 ㏈ conditions. For a simple fiber-to-fiber connection, the lateral misalignment should be limited to 2.7 um and tilt error 5.8o. In case of the fiber-to-fiber with ball lens, the working distance between fibers can be extended over 60 um. The optical coupling efficiency depends strongly on the positional errors of ball lenses along the optical axis, and it is also found that the lateral and vertical positional errors should be considered simultaneously in order to keep the high coupling efficiency.

Optical bench design rule formulated by statistical design of experiment (통계적 실험 계획법을 이용한 광학 벤치 설계 규칙의 설정)

  • 박세근;이재영;이승걸
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 2002.10a
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    • pp.123-127
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    • 2002
  • In order to set up the design rule of micro optical bench, optical coupling efficiencies of two sets of test benches are calculated. Simple linear connections of incoming and outgoing optical fibers with and without ball lenses are designed. Positional errors that are possible in actual fabrication processes are considered in the calculations and their tolerances are determined from 3dB conditions. For a simple fiber-to-fiber connection, the working distance is limited to $2.7\mu\textrm{m}$ and tilt error $5.8^{\circ}$. When ball lenses are located in front of each fiber, the working distance can be extended over $60\mu\textrm{m}$ , but the positional errors have the strong interaction among position parameters and thus should be considered simultaneously for tolerance design.

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Micro-Optical Bench Packaging for Thermo-Optic Tunable Filter (미세광학벤치를 이용한 열 가변 필터의 패키징)

  • 황병철;박헌용;이승걸;오범환;이일항;최두선;박세근
    • Proceedings of the IEEK Conference
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    • 2003.07b
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    • pp.1097-1100
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    • 2003
  • Tunable thermo-optic filter for WDM system was designed and fabricated. The basic structure of the filter was a Fabry-Perot resonator and the center cavity layer was poly-Si. Quardraple layers of low and high refractive index materials were used as DBR mirrors. Tuning and transmission efficiencies was measured and compared with the simulation results. Tuning range of 9.4 nm can be obtained by 64.7$^{\circ}C$ temperature changes and tuning efficiency was 0.144nm/K. The filter is to be assembled onto the micro optical bench with fiber optical path.

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