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Research on Fabrication of Silicon Lens for Optical Communication by Photolithography Process (포토리소그래피를 통한 광통신용 실리콘 렌즈 제작 및 특성 연구)

  • Park, Junseong;Lee, Daejang;Rho, Hokyun;Kim, Sunggeun;Heo, Jaeyeong;Ryu, Sangwan;Kang, Sung-Ju;Ha, Jun-Seok
    • Journal of the Microelectronics and Packaging Society
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    • v.25 no.2
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    • pp.35-39
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    • 2018
  • In order to improve the coupling efficiency, a collimator lens that collects the light emitted from the laser diode at a wide angle to the core of the optical fiber is essential. Glass mold method using a mold is widely used as a collimator lens currently used. Although this method is inexpensive to produce, it is difficult to form precisely and quality problems such as spherical aberration. In this study, the precision of surface processing was improved by replacing the existing glass mold method with the semiconductor process, and the material of the lens was changed to silicon suitable for the semiconductor process. The semiconductor process consists of a photolithography process using PR and a dry etching process using plasma. The optical coupling efficiency was measured using an ultra-precision alignment system for the evaluation of the optical characteristics of the silicon lens. As a result, the optical coupling efficiency was 50% when the lens diameter was $220{\mu}m$, and the optical coupling property was 5% or less with respect to the maximum optical coupling efficiency in the lens diameter range of $210-240{\mu}m$.

Observation of Dynamic Movement of Probing Pin on PCB Pad Using Electrical Reliability Test (인쇄회로 기판의 전기검사에서의 미세 탐침과 패드의 동적 거동 현상 관측)

  • Song, Seongmin;Cha, Gangil;Kim, Myungkyu;Jeon, Seungho;Yu, SangSeok
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.39 no.3
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    • pp.245-251
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    • 2015
  • In an electrical reliability test of a printed circuit board (PCB), the impact of the micro probing pins on the PCB needs to be checked to ascertain the quality of the circuit. In this study, the impact of the dynamic movement of the probing pin on the pad was observed. As a misaligned pin can exert horizontal force on the pad of the PCB, this study focused on the behavior of a misaligned probing pin. The parameters of observation were the circular and flat edges of the probing pin. The effects of the speed of movement, diameter, and the length of projection of the probing pin were also investigated. The results demonstrated that slippage angle is strongly affected by the shape of the edge of the probing pin, and that projection length is an important factor affecting pin slippage. In contrast, the speed of movement of the probing pin was able to double the slippage angle.

Fabrication of a Mach-Zehnder interferometer for education using a rotating glass plate and a 3D printer (회전 유리판과 3D 프린터를 이용한 교육용 마흐젠더 간섭계 제작)

  • Jang, Seong-Hun;Ju, Young-G
    • Korean Journal of Optics and Photonics
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    • v.28 no.5
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    • pp.213-220
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    • 2017
  • This paper proposes how to fabricate an educational Mach-Zehnder interferometer that is easy to align and inexpensive, using 3D printers and semiconductor lasers. The interferometer consists of a body $165mm{\times}120mm{\times}57mm$ in size, mirror mounts, a laser holder, beam splitters, and so on. The laser path is adjusted by 4 mirror mounts, each comprised of rubber bands, small metal wires, and a screw. The interference fringe is enlarged by the lens at the final stage. The refractive index of a slide glass was measured by counting the number of moving interference fringes while the slide glass, inserted into one of the two interferometer arms, is rotating. The formula for the refractive index as a function of the optical-path difference and rotation angle was obtained, and used to calculate the refractive index of glass from the interferometer experiment. The use of a rotating glass in one arm of the interferometer nullifies the need for a precision stage, which despite its high cost is often required to observe the moving interference fringe in the classroom. Therefore, the 3D-printed Mach-Zehnder interferometer proposed in this paper can be very useful for education, because of its affordability and performance. It enables students to perform both qualitative and quantitative studies using a 3D-printed interferometer, such as measuring the refractive index of a glass sample, and the wavelength of light.