• 제목/요약/키워드: titanum dioxide

검색결과 3건 처리시간 0.017초

소다배소 처리된 탈질 폐촉매로부터 황산침출과 가수분해 침전반응에 의한 TiO2의 회수 (Titanium Dioxide Recovery from Soda-roasted Spent SCR Catalysts through Sulphuric Acid Leaching and Hydrolysis Precipitation)

  • 김승현;친빅하;이재령
    • 자원리싸이클링
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    • 제29권5호
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    • pp.48-54
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    • 2020
  • 소다배소 처리한 탈질폐촉매의 수침출 잔사로부터 TiO2 회수를 위하여 황산침출과 가수분해 반응을 실시하였다. Ti 성분의 황산침출은 70 ℃, 3 시간, 교반속도 500 rpm, 슬러리 농도 100 g/L로 고정하여 실시하였고, 황산농도는 4~8 M로 변화시키며 진행하였다. 침출액으로부터 Ti 성분의 침전회수는 가수분해반응을 이용하였으며, 실험조건은 100 ℃, 반응시간 2 시간으로 고정하였고, Ti 성분의 침전율은 침출액과 증류수의 혼합비와 침전반응 Seed 혼입유무에 따라 비교하였다. Ti의 침출율은 6 M에서 최대 95.2 %까지 도달 후 점차 감소하는 경향을 나타내었고, Si의 침출율은 황산농도 증가에 반비례하여 급격히 감소하여 91.7 %에서 8 M 조건에서는 3.0 %까지 억제되었다. 침출액을 이용한 가수분해는 부성분인 Si의 함량이 가장 낮은 8 M 침출액을 이용하여 진행하였다. 침출액의 혼합비에 의한 Ti의 침전회수율은 반응시간에 비례하였고 혼합비에 반비례하였다. 또한, 침전반응의 가속화를 위해 TiO2(#325~#400 mesh, 0.2 g) seed를 첨가하였을 경우에 모든 혼합조건에서 침전회수율이 상승하였으며, 혼합비(침출액:증류수) 1:9~3:7 구간에서 98.8~99.8 %의 침전율이 달성되었다. 회수된 TiO2의 순도는 침출액 혼합비 1:9~3:7 구간에서 혼합비가 낮을수록 증가하여 최대 99.46 %까지 상승함을 확인하였다.

Ti$_{2}$O$_{2}$(C$_{2}$O$_{4}$)(OH)$_{2}$ . H$_{2}$O의 제조 및 특성평가 (Preparation and characterization of Ti$_{2}$O$_{2}$(C$_{2}$O$_{4}$)(OH)$_{2}$ . H$_{2}$O)

  • 최희락
    • 한국해양공학회지
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    • 제11권1호
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    • pp.44-48
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    • 1997
  • During studies of the ripening reaction of titanium oxalate, a new crystalline phase has been found. The crystal system was determined to be orthormbic with space group $C222_1$. The unit cell parameters were refined to a=10.503(2)$\AA$ b=15.509(3)$\AA$ c=9.7000(1)$\AA$. The chemical formula of the crystal is Ti$_{2}$O$_{2}$(C$_{2}$O$_{4}$)(OH)$_{2}$. H$_{2}$O. When heated to temperatures between 31$0^{\circ}C$ and 38$0^{\circ}C$, the material became amorphous. Heated above 41$0^{\circ}C$ converted it into anatase-type titanium dioxide.

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Active Materials for Energy Conversion and Storage Applications of ALD

  • 신현정
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2013년도 제45회 하계 정기학술대회 초록집
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    • pp.75.2-75.2
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    • 2013
  • Atomic layer deposition (ALD), utilizing self-limiting surface reactions, could offer promising perspectives for future efficient energy conversion devices. The capabilities of ALD for surface/interface modification and construction of novel architectures with sub-nanometer precision and exceptional conformality over high aspect ratio make it more valuable than any other deposition methods in nanoscale science and technology. In the context, a variety of researches on fabrication of active materials for energy conversion applications by ALD are emerging. Among those materials, one-dimensional nanotubular titanium dioxide, providing not only high specific surface area but also efficient carrier transport pathway, is a class of the most intensively explored materials for energy conversion systems, such as photovoltaic cells and photo/electrochemical devices. The monodisperse, stoichiometric, anatase, TiO2 nanotubes with smooth surface morphology and controlled wall thickness were fabricated via low-temperature template-directed ALD followed by subsequent annealing. The ALD-grown, anatase, TiO2 nanotubes in alumina template show unusual crystal growth behavior which allows to form remarkably large grains along axial direction over certain wall thickness. We also fabricated dye-sensitized solar cells (DSCs) introducing our anatase TiO2 nanotubes as photoanodes, and studied the effect of blocking layer, TiO2 thin films formed by ALD, on overall device efficiency. The photon convertsion efficiency ~7% were measured for our TiO2 nanotubebased DSCs with blocking layers, which is ~1% higher than ones without blocking layer. We also performed open circuit voltage decay measurement to estimate recombination rate in our cells, which is 3 times longer than conventional nanoparticulate photoanodes. The high efficiency of our ALD-grown, anatase, TiO2 nanotube-based DSCs may be attributed to both enhanced charge transport property of our TiO2 nanotubes photoanode and the suppression of recombination at the interface between transparent conducting electrode and iodine electrolytes by blocking layer.

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