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Catalytic Decomposition of NF3 by Thermal Decomposition and Hydrolysis of γ-Al2O3

γ-Al2O3 촉매상에서 열분해와 가수분해에 의한 NF3 촉매분해 특성

  • Kim, Yong Sul (School of Chemical Engineering, Yeungnam University) ;
  • Park, No-Kuk (School of Chemical Engineering, Yeungnam University) ;
  • Lee, Tae Jin (School of Chemical Engineering, Yeungnam University)
  • Received : 2014.12.19
  • Accepted : 2015.02.03
  • Published : 2015.04.10

Abstract

In this study, the catalytic activity of ${\gamma}-Al_2O_3$ was investigated for the decomposition of $NF_3$. Reactions for $NF_3$ decomposition were carried out in the range of reaction temperature of $330{\sim}730^{\circ}C$ and GHSV of $3,000{\sim}15,000mL/g-cat{\cdot}h$ in a fixed-bed catalytic reactor system. Thermal decomposition of $NF_3$ was also performed in order to compare with the catalytic decomposition of $NF_3$. The conversion of $NF_3$ by the catalytic decomposition at $400^{\circ}C$ was four times higher than that of the thermal decomposition. It was confirmed that the reaction behavior of $NF_3$ over ${\gamma}-Al_2O_3$ exhibited two reaction pathways in the presence of steam. Fluorine in $NF_3$ over ${\gamma}-Al_2O_3$ was chemically absorbed to $AlF_3$ by the gas-solid reaction in the absence of steam. The catalytic decomposition of $NF_3$ occurred by hydrolysis with steam. It was also confirmed by FT-IR analysis that $NF_3$ was completely decomposed to NOx and HF above $500^{\circ}C$.

본 연구에서는 $NF_3$의 분해를 위한 ${\gamma}-Al_2O_3$의 촉매활성을 조사하였다. $NF_3$ 분해반응은 고정층 촉매반응기에서 $330{\sim}730^{\circ}C$ 범위의 반응온도와 $3,000{\sim}15,000mL/g-cat{\cdot}h$의 공간속도 조건에서 수행되었고, $NF_3$의 열분해 반응이 촉매분해반응와 비교를 위하여 함께 수행되었다. $400^{\circ}C$의 촉매분해 반응에서 $NF_3$의 전화율은 열분해 반응보다 4배 정도 높았으며, ${\gamma}-Al_2O_3$상에서 $NF_3$의 반응거동은 스팀의 존재에 따라 두 가지 반응경로를 나타내는 것으로 확인되었다. 스팀이 존재하지 않은 조건에서는 기체-고체 반응에 의해서 $NF_3$에 함유된 불소성분은 $AlF_3$로 전이되고, 스팀이 존재하는 조건에서는 가수분해에 의한 촉매적 분해반응이 일어난다. 또한 $NF_3$$500^{\circ}C$ 이상에서 NOx와 HF로 완전히 분해되는 것으로 FT-IR분석에서 확인되었다.

Keywords

References

  1. C. F. Ou-Yang, H. S. Kam, C. H. Liu, J. Tzou, and J. L. Wang, Assessment of Removal Efficiency of Perfluorocompounds (PFCs) in a Semiconductor Fabrication Plant by gas Chromatography, Chemosphere, 76, 1273-1277 (2009). https://doi.org/10.1016/j.chemosphere.2009.06.039
  2. J. E. Kim, J. C. Bea, J. M. Yuk, K. Y. Oh, M. S. Park, and Y. S. Roh, Study on Application of Membrane for Separation in Perfluorocompound Gas ($SF_{6}$), Journal of Korea Society of Waste Management, 30, 173-180 (2013). https://doi.org/10.9786/kswm.2013.30.2.173
  3. N.-K. Park, H.-G. Park, T. J. Lee, W. C. Chang, and W. T. Kwon, Hydrolysis and oxidation on supported phosphate catalyst for decomposition of $SF_{6}$, Catal. Today, 185, 247-252 (2012). https://doi.org/10.1016/j.cattod.2011.08.008
  4. S. H. Lee, N.-K. Park, S. H. Yoon, W. C. Chang, and T. J. Lee, Catalytic Decomposition of $SF_{6}$ by Hydrolysis and Oxidation over $\gamma-Al_{2}O_{3}$, Clean Technol., 15(4), 273-279 (2009).
  5. X.-F. Xua, J. Y. Jeon, M. H. Y. Choi, H. Y. Kim, W. C. Choi, and Y.-K. Park, A strategy to protect $Al_{2}O_{3}$-based PFC Decomposition Catalyst from deactivation, Chem. Lett., 34(3), 364-365 (2005). https://doi.org/10.1246/cl.2005.364
  6. X.-F. Xua, J. Y. Jeon, M. H. Y. Choi, H. Y. Kim, W. C. Choi, and Y.-K. Park, The Modification and Stability of $\gamma-Al_{2}O_{3}$ Based Catalysts for Hydrolytic Decomposition of $CF_{4}$, J. Mol. Catal A-Chem., 266(1-2), 131-138 (2007). https://doi.org/10.1016/j.molcata.2006.10.026
  7. X. Niu, L. Sun, Y. Wang, H. Wu, and X. Xu, $NF_{3}$ decomposition over some metal oxides in the absence of water, Journal of Natural Gas Chemistry, 19, 463-467 (2010). https://doi.org/10.1016/S1003-9953(09)60107-9
  8. X. Xu, L. Sun, and Y. Wang, $NF_{3}$ decomposition over $Al_{2}O_{3}$ reagents without water, Journal of Natural Gas Chemistry, 20, 418-422 (2011). https://doi.org/10.1016/S1003-9953(10)60201-0
  9. M. M. Farris, A. A. Klinghoffer, J. A. Rossin, and D. E. Tevault, Deactivation of a Pt/$Al_{2}O_{3}$ catalyst during the oxidation of hexafluoropropylene, Catal. Today, 11(2), 501-516 (1992). https://doi.org/10.1016/0920-5861(92)80040-T

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