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Optimization of Drive-in Temperature at Doping Process for Mono Crystalline Silicon Solar Cell

단결정 실리콘 태양전지의 도핑 최적화를 위한 확산 온도에 대한 연구

  • 최성진 (충남대학교 대학원 전자.전파.정보통신공학과) ;
  • 송희은 (한국에너지기술연구원) ;
  • 유권종 (한국에너지기술연구원) ;
  • 유진수 (한국에너지기술연구원) ;
  • 한규민 (충남대학교 대학원 전자.전파.정보통신공학과) ;
  • 권준영 (충북대학교 대학원 전기공학과) ;
  • 이희덕 (충남대학교 대학원 전자.전파.정보통신공학과)
  • Received : 2010.11.16
  • Accepted : 2011.02.14
  • Published : 2011.02.28

Abstract

In this paper, the optimized doping condition of crystalline silicon solar cells with $156{\times}156\;mm^2$ area was studied. To optimize the drive-in temperature in the doping process, the other conditions except variable drive-in temperature were fixed. These conditions were obtained in previous studies. After etching$7\;{\mu}m$ of the surface to form the pyramidal structure, the silicon nitride deposited by the PECVD had 75~80nm thickness and 2 to 2.1 for a refractive index. The silver and aluminium electrodes for front and back sheet, respectively, were formed by screen-printing method, followed by firing in 400-425-450-550-$850^{\circ}C$ five-zone temperature conditions to make the ohmic contact. Drive-in temperature was changed in range of $830^{\circ}C$ to $890^{\circ}C$to obtain the sheet resistance $30{\sim}70\;{\Omega}/{\box}$ with $10\;\Omega}/{\box}$ intervals. Solar cell made in $890^{\circ}C$ as the drive-in temperature revealed 17.1% conversion efficiency which is best in this study. This solar cells showed $34.4\;mA/cm^2$ of the current density, 627 mV of the open circuit voltage and 79.3% of the fill factor.

Keywords

References

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