• 제목/요약/키워드: Ni/$La_2O_3$ catalyst

검색결과 24건 처리시간 0.019초

전이금속 산화물 촉매를 이용한 톨루엔 분해 (Decomposition of Toluene over Transition Metal Oxide Catalysts)

  • 천태진;최성우;이창섭
    • 대한환경공학회지
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    • 제27권6호
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    • pp.651-656
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    • 2005
  • 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.

이중 페로브스카이트 촉매 PrBaMn2O5+δ의 고온전기분해조(Solid Oxide Electrolysis Cell) 연료극 촉매로 적용 가능성에 대한 연구 (Study on Possibility of PrBaMn2O5+δ as Fuel Electrode Material of Solid Oxide Electrolysis Cell)

  • 권영진;김동연;배중면
    • 한국군사과학기술학회지
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    • 제20권4호
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    • pp.491-496
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    • 2017
  • The hydrogen($H_2$) is promising energy carrier of renewable energy in the microgrid system such as small village and military base due to its high energy density, pure emission and convenient transportation. $H_2$ can be generated by photocatalytic water splitting, gasification of biomass and water electrolysis driven by solar cell or wind turbine. Solid oxide electrolysis cells(SOECs) are the most efficient way to mass production due to high operating temperature improving the electrode kinetics and reducing the electrolyte resistance. The SOECs are consist of nickel-yttria stabilized zirconia(NiO-YSZ) fuel electrode / YSZ electrolyte / lanthanum strontium manganite-YSZ(LSM-YSZ) air electrode due to similarity to Solid Oxide Fuel Cells(SOFCs). The Ni-YSZ most widely used fuel electrode shows several problems at SOEC mode such as degradation of the fuel electrode because of Ni particle's redox reaction and agglomeration. Therefore Ni-YSZ need to be replaced to an alternative fuel electrode material. In this study, We studied on the Double perovskite $PrBrMnO_{5+{\delta}}$(PBMO) due to its high electric conductivity, catalytic activity and electrochemical stability. PBMO was impregnated into the scaffold electrolyte $La_{0.8}Sr_{0.2}Ga_{0.85}Mg_{0.15}O_{3-{\delta}}$(LSGM) to be synthesized at low temperature for avoiding secondary phase generated when it exposed to high temperature. The Half cell test was conducted at SOECs and SOFCs modes.

암모니아로부터 수소 제조를 위한 다양한 촉매 활성 테스트에 관한 연구 (A Study on Activity Testing of Various Catalysts for Hydrogen Production from Ammonia)

  • 이재혁;신경하;강진실;신현희;박세연;최유진;송완규;안호근
    • 한국수소및신에너지학회논문집
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    • 제34권6호
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    • pp.587-593
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    • 2023
  • This research project focused on the production of hydrogen through ammonia decomposition reactions while investigating how the reactivity of this process varies when employing different catalysts. Several metal oxide supports (Al2O3, La2O3, CeO2) were utilized as catalysts, with active metals from both the transition metal group (Co, Ni, Fe, Cr, Cu) and the noble metal group (Ru, Rh, Pd, Pt) impregnated onto these supports. Furthermore, the study examined how the reactivity evolves with changes in reaction temperature when employing the prepared catalysts. Additionally, the research delved into the distinctive activation energies associated with each of the catalysts. In this research, In the noble metal catalyst system, the order of high activity for ammonia decomposition reaction to produce hydrogen is Ru > Rh > Pt ≈ Pd. In the transition metal catalyst system, the order of high activity is Co > Ni > Fe > Cr > Cu.

페롭스카이트 촉매의 제조와 메탄 산화에 응용 (Preparation of Perovskite Catalysts and Its Application to Methane Combustion)

  • 함현식;김규성;안성환;신기석;김송형;박홍수
    • 한국응용과학기술학회지
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    • 제24권1호
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    • pp.67-73
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    • 2007
  • Methane combustion over perovskite catalysts was investigated. For the preparation of catalysts, Co, Mn, Fe, and Ni were used as B-site components of the perovskite catalysts $(ABO_3)$ and La was used as A-site component. The effect of calcination temperature on methane combustion and perovskite structure was also investigated. The structure of perovskites, surface area, and adsorbed oxygen species were tested with XRD, BET apparatus, and $O_2-TPD$, respectively. The formation of perovskite structure was affected by the calcination temperature. The catalyst desorbing oxygen at a lower temperature showed better activity for the methane combustion, therefore, the oxygen species desorbing at lower temperatures is responsible for the methane combustion.