전이금속 산화물 촉매를 이용한 톨루엔 분해

Decomposition of Toluene over Transition Metal Oxide Catalysts

  • Cheon, Tae-Jin (Department of Environmental Science and Engineering, Keimyung University) ;
  • Choi, Sung-Woo (Department of Environmental Science and Engineering, Keimyung University) ;
  • Lee, Chang-Seop (Department of Chemistry, Keimyung University)
  • 발행 : 2005.06.30

초록

톨루엔은 섬유산업 공정에서 발생하는 주요한 유해성 대기 오염원으로 간주된다. 본 연구에서는 ${\gamma}-Al_2O_3$를 지지체로 한 전이 금속 산화물 촉매(Cu, Mn, V, Cr, Co, Ni, Ce, Sn, Fe, Sr, Cs, Mo, La, W, Zn)를 제조하여 톨루엔 완전 산화 반응을 조사하였다. XRD, FE-SEM, BET와 TPR 기법을 사용하여 금속 촉매의 특성을 조사하였다. 촉매 가운데 Cu/${\gamma}-Al_2O_3$ 촉매가 가장 우수한 활성을 보여주었다. BET결과 촉매 활성의 증가는 비표면적과는 관련이 적은 것으로 나타났으며, X선 회절 분석에서 대부분의 촉매들이 무정형으로 존재함이 관찰되었다. FE-SEM을 관찰한 결과, 전이금속 산화물 촉매 중 구리산화물 촉매가 지지체 표면에 고르게 분산되어 있음을 확인할 수 있었다. 톨루엔 산화반응에 따른 촉매활성 효과는 ${\gamma}-Al_2O_3$ 지지체 위에 전이금속 산화물 촉매가 고르게 분산된 점과 촉매 표면의 우수한 환원 특성에 기인하는 것으로 설명할 수 있었다.

Toluene, which is emitted from textile process, is considered as an important hazardous air pollutant. In this study, the catalytic activity of transition metal oxides(Cu, Mn, V, Cr, Co, Ni, Ce, Sn, Fe, Sr, Cs, Mo, La, W, Zn)/${\gamma}-Al_2O_3$ catalysts was investigated to carry out the complete oxidation of toluene. The metal catalysts were characterized by XRD-ray diffraction), FE-SEM(Field Emission Scanning Electron Micrograph), BET(Brunauer Emmett Teller) method and TPR(Temperature Programmed Reduction). Among the catalysts, Cu/${\gamma}-Al_2O_3$ was highly promising catalyst for the oxidation of toluene. From the BET results, it seems that the catalytic activity is not correlated to the specific surface area. XRD results indicated that most of catalysts exist as amorphous phase. From the FE-SEM results, it was observed that copper on ${\gamma}-Al_2O_3$ surface was well dispersed among catalysts. The catalytic activity for the toluene oxidation could be explained with that metal oxide catalyst was dispersed well over supports and was attributed to reduction activity in surface of catalysts.

키워드

참고문헌

  1. 신제 대기오염방지공학 구윤서;김기현;목영선;이병규;이정주;이학성;정봉진;정일래;하상안;함성원
  2. Strategies for VOC Control at Sources, Advanced Environmental Technology 한화진
  3. Ind. Eng. Chem. Res. v.26 Complete Catalytic Oxidation of Volatile Organics Spivey, J.J.
  4. 비극성 용매를 이용한 VOC의 물질전달특성 평가 김혜진
  5. J. Korean Ind. Eng. Chem. v.14 no.4 VOC 배출 제어를 위한 톨루엔의 산화분해반응에 관한 연구 이태진;이종대;장원철
  6. J. Hazard. Mater. v.91 The catalytic oxidation of aromatic hydrocarbons over supported metal oxide Kim, S.C.
  7. J. Korean Ind. Eng. Chem. v.12 MnMgLaAg/$Al_2O_3$ 복합산화물 촉매에 의한 벤젠 연소반응 김덕중;김영철;박남국
  8. Catalytic incineration for control of volatile organic compounds emissions Jennings, M.S.;Krohn, N.E.;Berry, R.S.;Palazzolo, M.A.;Parks, R.M.;Fidler, K.K.
  9. Fuel Process.Technol. v.42 Catalytic combustion of methane Lee, J.H.;Trimm, D.L.
  10. Chem. Eng. Sci. v.57 Light-off curve of catalytic reaction and kinetics Duprat, F.
  11. v.10 알루미나담지 전이금속산화물 촉매를 이용한 휘발성 염화유기화합물의 산화처리 이득기;정선문
  12. Removal of Aromatic Hydrocarbons by Catalytic Oxidation 윤종문
  13. '99추계학술연구발표회 논문집(II) 전이금속을 이용한 휘발성 유기화합물(VOCs)의 제거 박진영;김상채;서성규;유의연
  14. Appl. Catal., A : Gen. v.162 TPR and TPD studies of CuO/$CeO_2$ catalysts for low temperature CO oxidation Luo, M.F.;Zhong, Y.J.;Yuan, X.X.;Zheng, X.M.
  15. Appl. Catal., B : Environ. v.15 The influence of surface structure on the catalytic activity of alumina supported copper oxide catalysts Oxidation of carbon monoxide and methane Park, P.W.;Ledford, J.S.
  16. Catal. Com. v.4 Alumina-supported manganese and manganese-palladium oxide catalysts for VOCs combustion Alvarez, G.;O'Shea, M.C.;V.A.;Fierro, J.L.G.;Arias, P.L.
  17. Korean J. Chem. Eng. v.20 no.3 Catalytic Combution of Benzene over Supported Metal Oxide Catalysts Hong, S.S.;Lee, G.H.;Lee, G.D.
  18. Appl. Catal., A : Gen. v.234 Activity and characterization of Cu/Zn, Cu/Cr and Cu/Zr on ${\gamma}$-alumina for methanol reforming for fuel cell vehicles Lindstrom, B.;Pettersson, L.J.;Menon, G.P.
  19. Appl. Catal., A : Gen. v.171 Reduction characteristics of copper oxide in cerium and zirconium oxide systems Kundakovic, L.;Flytzani-Stephanopoulos, M.
  20. Appl. Catal. A : Gen. v.141 Effect of chlorine on TPR and TPO behavior of an YSZ/${\gamma}$-$Al_2O_3$ supported copper oxide catalyst Dow, W.P.;Huang, T.J.
  21. J. Catal. v.150 Alumina-Supported Manganese Oxide Catalysts : I. Characterization: Effect of Precursor and Loading Kapteijn, F.;Vanlangeveld, A.D.;Moulijn, J.A.;Andreini, A.;Vuurman, M.A.;Turek, A.M.;Jehng, J.M.;Wachs, I.E.
  22. Appl. Catal., A : Gen. v.180 Total oxidation catalysts based on manganese or copper oxides and platinum or palladium I : Characterisation Ferrandon, M.;Carno, J.;Jaras, S.;Bjornbom, E.
  23. Appl. Catal., A : Gen. v.175 Catalyst characterization and activity of Ag-Mn, Ag-Co and Ag-Ce composite oxides for oxidation of volatile organic compounds Luo, M.F.;Yuan, X.X.;Zheng, X.M.
  24. Catal. Today v.93-95 The role of redox and acid-base properties of silica-supported vanadia catalysts in the selective oxidation of ethane Zhao, Z.;Yamada, Y.;Ueda, A.;Sakurai, H.;Kobayashi, T.
  25. Appl. Catal., B : Environ. v.50 Characterization and catalytic activity of Pd/$V_2O_5$/$Al_2O_3$ catalysts on benzene total oxidation Ferreira, R.S.G.;Oliveira, P.G.P.;Noronha, F.B.
  26. J. Catal. v.229 Deep oxidation of light alkanes over titania-supported palladium/vanadium catalysts Garcia, T.;Solsona, B.;Murphy, D.M.;Antcliff, K.L.;Taylor, S.H.