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Preparation of UV Cured Hard Coating Films Using Polysilazane on Plastic Substrates

플라스틱 기재 위에 polysilazane을 이용한 UV 경화형 하드코팅 도막 제조

  • Yang, Jun Ho (Department of Biomedical Materials, Konyang University) ;
  • Cho, Yong Ju (Research Institute of YooLim Specialty Chemicals Co.) ;
  • Song, Ki Chang (Department of Biomedical Materials, Konyang University)
  • 양준호 (건양대학교 의료신소재학과) ;
  • 조용주 (유림특수화학(주) 기술연구소) ;
  • 송기창 (건양대학교 의료신소재학과)
  • Received : 2017.11.23
  • Accepted : 2017.12.15
  • Published : 2018.04.01

Abstract

UV-curable hard coating solutions were prepared by mixing organic or inorganic polysilazane with urethane acrylate. UV-cured hard coating films were also obtained by flow coating, subsequently UV-curing on polymethylmethacrylate (PMMA) sheets. The effect of types and amounts of polysilazane was investigated on properties of obtained coating films. As a result, the coatings obtained by using organic polysilazane showed a high hydrophobic property with water contact angle of $95^{\circ}$, pencil hardness of 7H and high transparency of 92% in the visible wavelength range. On the other hand, the PMMA sheets made by using inorganic polysilazane exhibited a pencil hardness of as high as 8H, good adhesion to the substrate and water contact angle of $82^{\circ}$.

유기 및 무기 폴리실라잔을 우레탄 아크릴레이트와 혼합시킴에 따라 UV 경화형 하드 코팅 용액을 제조하였다. 이용액을 polymethylmethacrylate (PMMA) 시트에 흐름 코팅한 후 UV 경화시킴에 의해 UV 경화형 하드 코팅 도막을 제조하였다. 이 과정 중 폴리실라잔의 종류 및 첨가량을 변화시켜 코팅 도막의 물성에 미치는 영향을 살펴보았다. 그 결과 유기 폴리실라잔의 경우 $95^{\circ}$의 수접촉각을 보여 높은 소수성을 나타내었으며, 7H의 연필경도와 92%의 가시광선 투과율을 보였다. 반면에 무기 폴리실라잔을 코팅한 도막은 8H의 높은 연필경도와 기재와의 우수한 접착력 및 $82^{\circ}$의 수접촉각을 나타내었다.

Keywords

References

  1. Kim, D. H., Song, K. C., Chung, J. S. and Lee, B. S., "Preparation of Hard Coating Solutions Using Colloidal Silica and Glycidoxypropyl Trimethoxysilane by the Sol-Gel Method," Korean Chem. Eng. Res., 45(5), 442-447(2007).
  2. Oh, S. K., Chung, J. S., Lee, B. S. and Song, K. C., "Preparation of Hard Coating Solutions by Sol-Gel Reaction of Glycidoxypropyl Trimethoxysilane and Methacryloxypropyl Trimethoxysilane," Korean Chem. Eng. Res., 46(2), 274-278(2008).
  3. Hwang, J. H. and Song, K. C., "Preparation of UV-Curable Organic- Inorganic Hybrid Hard Coating Films Using Alumina sols and Acrylate Monomers," Korean Chem. Eng. Res., 49(3), 277-284 (2011). https://doi.org/10.9713/kcer.2011.49.3.277
  4. Yuan Y., Liu R., Wang C., Luo J. and Liu X., "Synthesis of UVCurable Acrylate Polymer Containing Sulfonic Groups for Anti- Fog Coatings," Progress in Organic Coatings, 77, 785-789(2014). https://doi.org/10.1016/j.porgcoat.2014.01.001
  5. Zhang, Z., Shao, Z., Luo, Y., An P., Zhang, M. and Xu C., "Hydrophobic, Transparent and Hard Silicon Oxide Coating from Perhydropolysilazane," Polym. Int., 64, 971-978(2014).
  6. Marceaux, S., Bressy, C., Perrin, F. X., Martin C. and Margaillan, A., "Development of Polyorganosilazane-Silicon Marine Coatings," Progress in Organic Coatings, 77, 1919-1928(2014). https://doi.org/10.1016/j.porgcoat.2014.06.020
  7. Kozuka, H. and Fujita, M. and Tamoto, S., "Polysilazane as the Source of Silica: the Formation of Dense Silica Coatings at Room Temperature and the New Route to Organic-Inorganic Hybrids," J. Sol-Gel Sci. Technol., 48, 148-155(2008). https://doi.org/10.1007/s10971-008-1793-1
  8. Naganuma, Y., Horiuchi, T., Kato, C. and Tanaka, S., "Low Temperature Synthesis of Silica Coating on a Poly(ethylene terephthalate) Film from Perhydropolysilazane Using Vacuum Ultraviolet Light Irradiation," Surface & Coatings Technology, 225, 40-46(2013). https://doi.org/10.1016/j.surfcoat.2013.03.014
  9. ASTM D 3359, "Standard Test Methods for Measuring Adhesion by Tape Test," ASTM International, 927-929(1997).
  10. Bauer, F., Decker, U., Dierdorf, A., Ernst, H., Heller, R., Liebe H. and Mehnert, R., "Preparation of Moisture Curable Polysilazane Coatings. Part I. Eluicidation of Low Temperature Curing Kinetics by FT-IR Spectroscopy," Progress in Organic Coatings, 53, 183-190(2005). https://doi.org/10.1016/j.porgcoat.2005.02.006