수열법에 의한 $CaTiO_3$분말 합성 시 광화제와 농도가 입자형상에 미치는 영향

Effects of mineralizer and concentration on the morphology of the $CaTiO_3$ powders prepared by hydrothermal method

  • 정항철 (조선대학교 금속ㆍ재료공학부) ;
  • 서동석 (서울대학교 재료공학부) ;
  • 이종국 (조선대학교 금속ㆍ재료공학부)
  • 발행 : 2002.12.01

초록

아나타제형 $TiO_2$, 분말과 $Ca(OH)_2$ 분말을 출발물질로 하여 광화제로 KOH 및 NaOH를 각각 첨가한 후, 오토클레이브 내에서 수열반응시켜 perovskite구조를 갖는 $CaTiO_3$, 분말을 제조하였다. $CaTiO_3$, 분말 합성 시 광화제의 종류 및 농도에 따른 결정상 변화와 입자 형상 및 크기를 고찰한 결과, 광화제로 1 N KOH 용액을 사용한 경우, 약 0.7$\mu$m 크기의 구형입자가 합성되었고, 10 N KOH 용액을 사용한 경우, 3 $\mu$m 정도의 육면체형 입자로 합성되었다. 광화제인 KOH 농도가 증가함에 따라 구형입자로부터 육면체형 입자로 형상이 변화되었으며, 입자의 크기도 증가하였다. 1 N NaOH 용액을 광화제로 사용한 경우에는 0.5~1 $\mu$m 정도의 구형입자가 합성되었고, 10 N NaOH 용액을 사용한 경우에는 1~4 $\mu$m 정도의 육면체 형상을 갖는 입자와 10$\mu$m 이상인 휘스커형 입자가 혼합된 형상으로 합성되었다. KOH 광화제와 마찬가지로 NaOH 광화제의 농도가 증가함에 따라 육면체 및 휘스커 형상을 갖는 입자로 변화하였으며, 입자의 크기도 아울러 증가하였다. 성분 분석 결과 휘스커 형상의 입자의 경우에는 육면체형 입자에서 관찰된 sodium성분이 검출되지 않았다.

The $CaTio_3$powder with perovskite structure was synthesized by mixing anatase $TiO_2$and $Ca(OH)_2$powders as starting materials, and KOH or NaOH as mineralizer, followed by hydrothermal method. The change of crystal structure, particle shape and size of the synthesized $CaTiO_3$powder was investigated with kind and concentration of mineralizer. It was found that the spherical particles of 0.7 $\mu$m were obtained when using 1N KOH and the hexahedrons particles of 3$\mu$m were obtained for the case of using 10 N KOH. With increasing KOH concentration, the particle shape was changed from sphere to hexahedrons and its size also increased. When using 1 N NaOH, the powder was consisted of 0.5~1 $\mu$m particle in size, whereas hexahedrons of 1~4 $\mu$m and whiskers more than 10$\mu$m in size was obtained for the 10 N NaOH solution. With increasing NaOH concentration, the particle shape was varied from hexahedrons to whiskers, showing the similar result with the KOH case. It was confirmed from EDS analysis that Na element, which was detected in hexahedrones was not contained in the whiskers.

키워드

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