Issue
Korean Chemical Engineering Research,
Vol.56, No.5, 625-630, 2018
지르코니아와 금 표면 위의 메르캡토언데실인산층의 정전기적 상호작용
Electrostatic Interaction between Zirconia and 11-Mercaptoundecylphosphoric-acid Layer Formed on Gold Surfaces
지르코니아와 금 표면 위에 형성된 메르캡토언데실인산층 사이에서 정전기적 상호작용이 규명되었다. 이를 위하여, 원자힘현미경(AFM)이 표면들 사이에서 pH값과 염 농도에 따라 작용하는 힘의 측정에 이용되었다. 측정된 힘은 Derjaguin-Landau-Verwey-Overbeek (DLVO) 이론으로 해석되어 각 조건에 대해서 표면의 정전기적인 특성들이 정량적으로 산출되었다. 이 표면 특성들의 염 농도와 pH에 대한 의존성이 질량보존의 법칙으로 예측된 결과와 일치하였다. pH 의존성은 표면 위의 이온화 기능기들로 설명될 수 있다. pH 4와 8에서 메르캡토언데실인산층이 지르코니아보다 더 많은 표면전하밀도와 전위차를 가지는 것은 그 층의 이온화 기능기들에 기인한 것으로 생각된다.
The electrostatic interactions were investigated between the zirconia and the 11-Mercaptoundecylphosphoric- acid layer formed on gold surfaces for their complex structures. 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 analyzed with the Derjaguin-Landau-Verwey-Overbeek theory to estimate the potential and charge density of the surfaces for each condition. The concentration dependence of the surface properties, found from the measurement at pH 4 and 8, was consistent with the prediction from the law of mass action. The pH dependence was explained with the ionizable groups on the surface. It was found that the 11-Mercaptoundecylphosphoric-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 ionized-functional-groups of the layer.
[References]
  1. Soolaman DM, Yu HZ, J. Phys. Chem. C, 111, 14157, 2007
  2. Hugon A, Delannoy L, Louis C, Gold Bull., 41, 127, 2008
  3. Zhang X, Shi H, Xu BQ, J. Catal., 279(1), 75, 2011
  4. Wang CM, Fan KN, Liu ZP, J. Am. Chem. Soc., 129(9), 2642, 2007
  5. Kwak JH, Han GY, Bae JW, Yoon KJ, Korean J. Chem. Eng., 1000, 1, 2014
  6. Kim MY, Seo G, Park JH, Shin CH, Kim ES, Korean Chem. Eng. Res., 49(1), 1, 2011
  7. Arrii S, Morfin F, Renouprez AJ, Rousset JL, J. Am. Chem. Soc., 126(4), 1199, 2004
  8. Zhang X, Wang H, Xu BQ, J. Phys. Chem. B, 109(19), 9678, 2005
  9. Kamat PV, J. Phys. Chem. C, 111, 2834, 2007
  10. Valden M, Lai X, Goodman DW, Science, 281(5383), 1647, 1998
  11. Sakurai H, Tsubota S, Haruta M, Appl. Catal. A: Gen., 102(2), 125, 1993
  12. Li X, Fu J, Steinhart M, Kim DH, Knoll W, Bull. Korean Chem. Soc., 28(6), 1015, 2007
  13. Schmid G, Chem. Rev., 92(8), 1709, 1992
  14. Noh J, Park H, Jeong Y, Kwon S, Bull. Korean Chem. Soc., 27, 403, 2006
  15. Dasog M, Scott RWJ, Langmuir, 23(6), 3381, 2007
  16. Sandhyarani N, Pradeep T, Chem. Phys. Lett., 338(1), 3336, 2001
  17. Brewer NJ, Rawsterne RE, Kothari S, Leggett GJ, J. Am. Chem. Soc., 123(17), 4089, 2001
  18. Binnig G, Quate CF, Gerber C, Phys. Rev. Lett., 56, 930, 1986
  19. Derjaguin BV, Landau L, Acta Physiochem. URSS, 14(11), 633, 1941
  20. Cleveland JP, Manne S, Bocek D, Hansma PK, Rev. Sci. Instrum., 64, 403, 1993
  21. Derjaguin B, Trans. Faraday Soc., 35(3), 203, 1940
  22. Israelachvili JN, Adams GE, J. Chem. Soc.-Faraday Trans., 74, 975, 1978
  23. Shubin VE, Kekicheff P, J. Colloid Interface Sci., 155(1), 108, 1993
  24. Parker JL, Christenson HK, J. Chem. Phys., 88, 8013, 1988
  25. O’Shea SJ, Welland ME, Pethica JB, Chem. Phys. Lett., 223(4), 336, 1994
  26. Derjaguin BV, Kolloid Z., 69(2), 155, 1934
  27. Hartmann U, Phys. Rev. B, 43, 2404, 1991
  28. Israelachivili JN, Intermolecular & Surface Forces, Academic Press, New York, 183-192(1991).
  29. Shin H, Agarwal M, de Guire MR, Heuer AH, Acta Mater., 46, 801, 1998
  30. Verwey EJW, Overbeek JTG, Theory of the Stability of Lyophobic Colloids, Elsevier, New York, 51-63(1948).
  31. Hogg R, Healy TW, Fuersten DW, Trans. Faraday Soc., 62(522P), 1638, 1966
  32. Hunter RJ, Foundations of Colloid Science, Oxford University Press, Oxford, U.K., 396-417(1987).
  33. Chan DYC, Pashley RM, White LR, J. Colloid Interface Sci., 77(1), 283, 1980
  34. Parker JL, Prog. Surf. Sci., 47(3), 205, 1994
  35. Park JW, Appl. Chem. Eng., 25(6), 607, 2014
  36. Park JW, Ahn DJ, Colloids Surf. B: Biointerfaces, 62, 157, 2008
  37. Ducker WA, Senden TJ, Pashley RM, Nature, 353(6341), 239, 1991
  38. Horn RG, Smith DT, Haller W, Chem. Phys. Lett., 162(4-5), 404, 1989
  39. Choi JY, Kim DK, J. Sol-Gel Sci. Technol., 15, 231, 1999
  40. Schultz M, Grimm S, Burckhardt W, Solid State Ion., 63-65, 18, 1993
  41. Pashley RM, J. Colloid Interface Sci., 83(2), 531, 1981
  42. Weast RC, CRC Handbook of Chemistry and Physics (64th ed.), CRC Press, Boca Raton, Florida, p. D-169(1983).