Coating Effect of Molding Core Surface by DLC and Re-Ir Coating

DLC 및 Re-Ir 코팅에 의한 성형용 코어면의 코팅 효과

  • Kim, Hyun-Uk (Korea Photonics Technology Institute, Ultra Precision Optics Team) ;
  • Cha, Du-Hwan (Korea Photonics Technology Institute, Ultra Precision Optics Team) ;
  • Lee, Dong-Kil (Korea Photonics Technology Institute, Ultra Precision Optics Team) ;
  • Kim, Sang-Suk (Korea Photonics Technology Institute, Ultra Precision Optics Team) ;
  • Kim, Hye-Jeong (Korea Photonics Technology Institute, Ultra Precision Optics Team) ;
  • Kim, Jeong-Ho (Korea Photonics Technology Institute, Ultra Precision Optics Team)
  • 김현욱 (한국광기술원 초정밀광학팀) ;
  • 차두환 (한국광기술원 초정밀광학팀) ;
  • 이동길 (한국광기술원 초정밀광학팀) ;
  • 김상석 (한국광기술원 초정밀광학팀) ;
  • 김혜정 (한국광기술원 초정밀광학팀) ;
  • 김정호 (한국광기술원 초정밀광학팀)
  • Published : 2009.01.01

Abstract

Recently, with the increasing lightness and miniaturization of high resolution camera phones, the demand for aspheric glass lens has increased because plastic and spherical lens are unable to satisfy the required performance. An aspheric glass lens is fabricated by the high temperature and pressure molding using a tungsten carbide molding core, so precision grinding and coating technology for the molding core surface are required. This study investigates the effect of diamond-like carbon (DLC) and rhenium-iridium (Re-Ir) coating For aspheric molding core surface. The grinding conditions of the tungsten carbide molding core were obtained by design of experiments (DOE) for application in the ultra precision grinding process of the tungsten carbide molding core of the aspheric glass lens used in 5 megapixel, $4{\times}$ zoom camera phone modules. A tungsten carbide molding core was fabricated under this grinding condition and coated with the DLC and Re-Ir coating. By measurements, the effect of DLC and Re-Ir coating on the form accuracy and surface roughness of molding coer was evaluated.

Keywords

References

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