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Surface Properties of Mercaptopyruvic-acid Layer Formed on Gold Surfaces Interacting with ZrO2

지르코니아와 상호작용하는 금 표면 위의 메르캡토파이러빅산층 표면 물성

  • Park, Jin-Won (Department of Chemical and Biomolecular Engineering, College of Energy and Biotechnology, Seoul National University of Science and Technology)
  • 박진원 (서울과학기술대학교 화공생명공학과)
  • Received : 2014.03.06
  • Accepted : 2014.04.18
  • Published : 2014.06.30

Abstract

It is investigated that the surface properties of mercaptopyruvic-acid layer formed on gold surfaces may make an effect on the distribution of either gold particle adsorbed to the zirconia surface or vice versa. For the investigation, the atomic force microscope was used to measure the surface forces between the surfaces as a function of the salt concentration and pH value. The forces were quantitatively analyzed with the derjaguin-landau-verwey-overbeek (DLVO) theory to estimate the electrostatic properties, potential and charge density, of the surfaces for each condition of salt concentration and pH value. The estimatedvalue dependence on the salt concentration was explained with the law of mass action, and the pH dependence was interpreted with the ionizable groups on the surface. The salt concentration dependence of the surface properties, found from the measurement at pH 4 and 8, was predictable from the law. It was found that the mercaptopyruvic-acid layer had higher values for the surface charge densities and potentials than the zirconia surfaces at pH 4 and 8, which may be attributed to the ionizedfunctional-groups of the mercaptopyruvic-acid layer.

지르코니아 표면에 흡착되는 금 입자의 분포 또는 그 반대 경우의 분포에 영향을 끼칠 수도 있는 정전기적 상호작용과 금 입자를 코팅한 메르캡토파이러빅산(mercaptopyruvic-acid)층의 표면물성을 규명하였다. 이를 위하여, 원자힘현미경(atomic force microscope)으로 메르캡토파이러빅산층 표면과 지르코니아표면 사이의 표면힘을 염농도와 pH값에 따라 측정하였다. 측정된 힘은 derjaguin-landau-verwey-overbeek (DLVO) 이론으로 해석되어 표면의 포텐셜과 전하밀도들이 정량적으로 산출되었다. 이 특성들이 염농도와 pH에 대하여 나타내는 의존성을 질량보존의 법칙으로 기술하였다. pH 8 조건에서 실험으로 산출된 표면 특성의 염농도 의존성은 이론적으로 예측했던 결과와 일치하는 것으로 관찰되었다. 메르캡토파이러빅산층의 표면이 지르코니아 표면보다 높은 포텐셜과 전하밀도를 갖는 것이 발견되었는데, 이는 메르캡토파이러빅산 층의 이온화-기능-그룹에 기인한 것으로 생각된다.

Keywords

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