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Synthesis of Nano TiO2 Coated on Fly Ash Composites by the Precipitation Dropping Method

침전제적하법에 의한 나노 TiO2코팅 석탄회 복합체 제조

  • 신대용 (강원대학교 석재복합 신소재제품 연구센터) ;
  • 한상목 (강원대학교 신소재공학과)
  • Published : 2002.06.01

Abstract

TiO$_2$ particles coated on fly ash composites for use in photocatalyst were synthesized by the precipitation dropping method and heated at $700^{\circ}C$ for 2 h. The pH of reaction solution, the addition rate of NH$_4$HCO$_3$, the stirring speed, the reaction temperature and the concentration of TiC1$_4$ had a pronounced effect on the nature of precipitated TiO$_2$ particles on the surface off fly ash and the crystal structure of precipitated TiO$_2$ particles. At an addition rate of NH$_4$HCO$_3$; 1.0 ml/min, the pH of the reaction solution; 6, the stirring speed; 1,000 rpm and the reaction temperature; 8$0^{\circ}C$, about 10 nm of TiO$_2$ particle size and homogeneous precipitated layer on the surface of a fly ash was achieved. On the contrary, at an addition rate of NH$_4$HCO$_3$; 0.3,0.5 ml/min, the pH of the reaction solution; 2 and 11, the stirring speed; 300~500 rpm and the reaction temperature; lower than 5$0^{\circ}C$:, Inhomogeneous precipitated layer was developed on a fly ash. TiO$_2$ particles with anatase phase was formed as-dried precipitation at the low concentration of Tic14, the high addition rate of NH$_4$HCO$_3$ and the high reaction temperature, the crystalline fraction of anatase increased with raising heat-treatment temperature and rutile phase began to formation at 80$0^{\circ}C$. The crystal size of TiO$_2$ particles increased with raising the heat-treatment temperature, the crystal size was showed about 21 m at $700^{\circ}C$. Anatase type of TiO$_2$ coated on the fly ash heated at $700^{\circ}C$ for 2 h showed 1.25 g/cm$^3$of particle density, 82.8% of strength and 69.5 Lab of whiteness and can be used as a photocatalyst.

광촉매용 TiO$_2$코팅 석탄회 복합체를 침전제적하법을 이용하여 합성한 후, $700^{\circ}C$에서 2시간 열처리하여 제조하였다. 석탄회 표면의 TiO$_2$ 입자 석출상태와 결정상은 반응용액의 pH, 침전제인NH$_4$HCO$_3$의 주입속도, 교반속도, 반응온도 및 TiC1$_4$ 의 첨가량에 영향을 받았다. NH$_4$HCO$_3$의 주입속도=1.0ml/min, 반응용액의 pH=6, 교반속도=1,000rpm 및 반응온도=8$0^{\circ}C$인 석탄회의 표면에는 약 10m의 TiO$_2$ 입자가 균일하게 석출되었으나,NH$_4$HCO$_3$의 주입속도=0.3 및 0.5ml/min, 반응용액의 pH=2 및 11 ,교반속도=300~500rpm 및 반응온도=5$0^{\circ}C$ 이하인 석탄회의 표면에는 불균일한 TiO$_2$ 입자의 석출이 관찰되었다. NH$_4$HCO$_3$의 주입속도와 반응온도가 증가하고 TiC1$_4$의 농도가 감소함에 따라 석탄회 표면에 석출된 anatase상의 결정성은 열처리온도에 따라 증가하였으나,800"C에서 rutile로 전이하였다 반응온도와 NH$_4$HCO$_3$의 주입속도 및 Tic14의 농도가 증가함에 따라 rutile상이 생성되었다. $700^{\circ}C$에서 2시간 열처리하여 약 21m의 anatase상 TiO$_2$ 입자가 코팅된 석탄회 복합체는 1.25g/㎤의 밀도, 82.8%의 강도 및 69.5Lab의 백색도를 나타내었으며, 광촉매로 응용이 가능하였다.능하였다.

Keywords

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