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Properties of Porous Silver with Polysiloxane Addition

다공성 은의 폴리실록센 첨가에 따른 물성 변화

  • Kim, Eun-seok (Department of Materials Science and Engineering, University of Seoul) ;
  • Kim, Ik-gyu (Department of Materials Science and Engineering, University of Seoul) ;
  • Kim, Kwangbae (Department of Materials Science and Engineering, University of Seoul) ;
  • Song, Ohsung (Department of Materials Science and Engineering, University of Seoul)
  • 김은석 (서울시립대학교 신소재공학과) ;
  • 김익규 (서울시립대학교 신소재공학과) ;
  • 김광배 (서울시립대학교 신소재공학과) ;
  • 송오성 (서울시립대학교 신소재공학과)
  • Received : 2020.05.06
  • Accepted : 2020.08.07
  • Published : 2020.08.31

Abstract

A porous material which can contain liquid perfume was manufactured by adding 1~4 wt% of polysiloxane into a composite containing 20 ㎛ Ag powder and 30 wt% of 53 ㎛ salt, sintering for 60 min at 750℃, and melting salt selectively. The changes in pore, hardness, and microstructure were confirmed according to the polysiloxane content both before and after sintering. The manufactured silver liquid container was formed with open pores both before and after sintering, and the container shrunk by 2~7 % in both perpendicular and parallel directions after sintering. Vickers hardness was increased after sintering and was doubled when 2 wt% of polysiloxane was added. In case of the microstructure, the surface condition of the silver liquid container became darker according to the polysiloxane content, and the pore size was decreased from 50 ㎛ to under 10 ㎛. The composition distribution result revealed an even distribution when 2 wt% of polysiloxane was added but uneven distribution when over 3 wt% of polysiloxane was added due to decreased hardness by cluster. Therefore, the addition of an appropriate amount of 2 wt% polysiloxane reinforced the porous silver with open pores to offer application for jewelry usage.

20 ㎛급 은 분말과 53 ㎛급 소금 30 wt%의 혼합체에 폴리실록센을 1~4 wt%까지 첨가시키고 750℃-60min 소결하고, 소금을 선택적으로 녹여내어 액상 향수를 담지할 수 있는 다공체를 제작하였다. 소결전후에 폴리실록센 첨가량에 따라 기공, 경도, 그리고 미세구조의 변화를 확인하였다. 제작한 은 담지체는 소결 전후 모두 열린 기공으로 형성되고, 소결 후에는 지름 및 높이 방향으로 2~7 % 수축하였다. 비커스 경도는 소결 후 모두 증가하였고, 특히 2 wt%의 폴리실록센을 첨가한 경우 소결 전보다 2배 증가하는 것을 확인하였다. 미세구조의 경우 폴리실록센 첨가에 따라 은 담지체 표면상태는 어두워졌고, 기공이 50 ㎛에서 10 ㎛ 이하로 작아지는 것을 확인하였다. 조성분포 확인 결과 폴리실록센 2 wt% 첨가하였을 때 고루 분포되어 있었으며, 3 wt%이상 첨가하였을 때 뭉쳐져서 강도가 저하되는 문제가 있었다. 따라서 열린기공을 가진 다공성 은에 대해 주얼리 용도로 2 wt%의 적정량의 폴리실록센을 첨가하여 성공적인 강화가 가능하였다.

Keywords

References

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