• 제목/요약/키워드: photodeposition

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Photocatalytic Decomposition of Gaseous Acetaldehyde by Metal Loaded $TiO_2$ with Ozonation

  • Cho, Ki-Chul;Yeo, Hyun-Gu
    • Journal of Korean Society for Atmospheric Environment
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    • 제22권E1호
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    • pp.19-26
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    • 2006
  • The decomposition of gaseous $CH_3CHO$ was investigated by metal loaded $TiO_2$ (pure $TiO_2,\;Pt/TiO_2,\;Pd/TiO_2,\;Mn/TiO_2\;and\;Ag/TiO_2$) with $UV/TiO_2$ process and $UV/TiO_2/O_3$ process at room temperature and atmospheric pressure. Metal loaded $TiO_2$ was prepared by photodeposition. Decomposition of $CH_3CHO$ was carried out in a flow-type photochemical reaction system using three 10W black light lamps ($300{\sim}400nm$) as a light source. The experimental results showed that the degradation rate of $CH_3CHO$ was increased with Pt and Ag on $TiO_2$ compared to pure $TiO_2$, but decreased with depositing Pd and Mn on pure $TiO_2$. The considerable increase in the degradation efficiency of the $CH_3CHO$ was found by a combination of photocatalysis and ozonation as compared to only by ozonation or photocatalysis. Loading of Pt on $TiO_2$ promoted conversion of gaseous ozone. The degradation rate of gaseous $CH_3CHO$ decreased with an increase of water vapor in the feed stream for the both $UV/TiO_2\;and\;UV/TiO_2/O_3$ processes. The pure $TiO_2$ was more affected by the water vapor than Pt loaded $TiO_2$.

졸-겔공정/광증착법을 이용한 Ag-Doped TiO2 합성 및 광촉매 특성 (Photocatalytic Properties of the Ag-Doped TiO2 Prepared by Sol-Gel Process/Photodeposition)

  • 김병민;김정식
    • 한국재료학회지
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    • 제26권2호
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    • pp.73-78
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    • 2016
  • $TiO_2$ nanoparticles were synthesized by a sol-gel process using titanium tetra isopropoxide as a precursor at room temperature. Ag-doped $TiO_2$ nanoparticles were prepared by photoreduction of $AgNO_3$ on $TiO_2$ under UV light irradiation and calcinated at $400^{\circ}C$. Ag-doped $TiO_2$ nanoparticles were characterized for their structural and morphological properties by X-ray diffractometry (XRD), scanning electron microscopy (SEM), energy dispersive spectroscopy (EDS), and transmission electron microscopy (TEM). The photocatalytic properties of the $TiO_2$ and Ag-doped $TiO_2$ nanoparticles were evaluated according to the degree of photocatalytic degradation of gaseous benzene under UV and visible light irradiation. To estimate the rate of photolysis under UV (${\lambda}=365nm$) and visible (${\lambda}{\geq}410nm$) light, the residual concentration of benzene was monitored by gas chromatography (GC). Both undoped/doped nanoparticles showed about 80 % of photolysis of benzene under UV light. However, under visible light irradiation Ag-doped $TiO_2$ nanoparticles exhibited a photocatalytic reaction toward the photodegradation of benzene more efficient than that of bare $TiO_2$. The enhanced photocatalytic reaction of Ag-doped $TiO_2$ nanoparticles is attributed to the decrease in the activation energy and to the existence of Ag in the $TiO_2$ host lattice, which increases the absorption capacity in the visible region by acting as an electron trapper and promotes charge separation of the photoinduced electrons ($e^-$) and holes ($h^+$). The use of Ag-doped $TiO_2$ nanoparticles preserved the option of an environmentally benign photocatalytic reaction using visible light; These particles can be applicable to environmental cleaning applications.

Hybrid between Inorganic Material and Biological Photosystem1 for Light Energy Application

  • 김영혜;남기태
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2013년도 제45회 하계 정기학술대회 초록집
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    • pp.272-272
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    • 2013
  • The attractive features of photosynthetic reaction center proteins for energy application make them useful in solar energy conversion to hydrogen fuel or electrical energy. Almost unity charge separation quantum yield and its rapid speed of ~1ns, absorbance region in visible light (480~740 nm) and high proportion of photosynthetically active solar energy of 48.5% allowed photosystem1 to exploited as a bio-material for photo-energy devices. Directionality of photosystem1 in electron transfer can solve main problem in two-step water splitting process where back reaction deteriorates the overall efficiency. In the study, photosystem1 was extracted from spinach and the photo-induced excited electron in the reaction center was utilized in various field of light energy application. First, hydrogen evolving system realized by photodeposition of platinum at the end of the electron transfer chain, with combining specific semiconductor to oxidize water in the first step of Z-scheme. The evaluation by gas-chromatography demonstrated hydrogen evolution through the system. For the further application of photoelectrical material on electrode, photosystem1 have been controlled by copper ion, which is expected to assemble photosystem in specific orientation followed by maximized photoelectrical ability of film. The research proposed concrete methods for combining natural protein and artificial materials in one system and suggested possibility of designing interface between biological and inorganic materials.

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Photoelectrochemical Water Oxidation Using ZnO Nanorods Coupled with Cobalt-Based Catalysts

  • Jeon, Tae-Hwa;Choi, Sung-Kyu;Jeong, Hye-Won;Kim, Seung-Do;Park, Hyun-Woong
    • Journal of Electrochemical Science and Technology
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    • 제2권4호
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    • pp.187-192
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    • 2011
  • Photoelectrochemical performances of ZnO electrodes are enhanced by coupling with cobalt-based catalyst (CoPi) in phosphate electrolyte (pH 7). For this study, hexagonal pillar-shaped ZnO nanorods are grown on ZnO electrodes through a chemical bath deposition, onto which CoPi is deposited with different photodeposition times (10-30 min). A scanning electron microscopic study indicates that CoPi deposition does not induce any change of ZnO morphology and an energy-dispersive X-ray spectroscopic analysis shows that inorganic phosphate ions (Pi) exist on ZnO surface. Bare ZnO electrodes generate the current of ca. $0.36mA/cm^2$ at a bias potential of 0.5 V vs. SCE, whereas ZnO/CoPi (deposited for 10 min) has ca. 50%-enhanced current ($0.54mW/cm^2$) under irradiation of AM 1.5G-light ($400mW/cm^2$). The excess loading of CoPi on ZnO results in decrease of photocurrents as compared to bare ZnO likely due to limited electrolyte access to ZnO and/or CoPi-mediated recombination of photogenerated charge carriers. The primary role of CoPi is speculated to trap the photogenerated holes and thereby oxidize water into molecular oxygen via an intervalency cycle among Co(II), Co(III), and Co(IV).

Few-Layered MoS2 Nanoparticles Loaded TiO2 Nanosheets with Exposed {001} Facets for Enhanced Photocatalytic Activity

  • Chen, Chujun;Xin, Xia;Zhang, Jinniu;Li, Gang;Zhang, Yafeng;Lu, Hongbing;Gao, Jianzhi;Yang, Zhibo;Wang, Chunlan;He, Ze
    • Nano
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    • 제13권11호
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    • pp.1850129.1-1850129.10
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    • 2018
  • To improve the high charge carrier recombination rate and low visible light absorption of {001} facets exposed $TiO_2$ [$TiO_2(001)$] nanosheets, few-layered $MoS_2$ nanoparticles were loaded on the surfaces of $TiO_2(001)$ nanosheets by a simple photodeposition method. The photocatalytic activities towards Rhodamine B (RhB) were investigated. The results showed that the $MoS_2-TiO_2(001)$ nanocomposites exhibited much enhanced photocatalytic activities compared with the pure $TiO_2(001)$ nanosheets. At an optimal Mo/Ti molar ratio of 25%, the $MoS_2-TiO_2(001)$ nanocomposites displayed the highest photocatalytic activity, which took only 30 min to degrade 50 mL of RhB (50 mg/L). The active species in the degradation reaction were determined to be $h^+$ and $^{\bullet}OH$ according to the free radical trapping experiments. The reduced charge carrier recombination rate, enhanced visible light utilization and increased surface areas contributed to the enhanced photocatalytic performances of the 25% $MoS_2-TiO_2(001)$ nanocomposites.

염료폐수 분해를 위한 가시광 감응형 Pt-C-TiO2 광촉매의 합성 (Synthesis of Visible-working Pt-C-TiO2 Photocatalyst for the Degradation of Dye Wastewater)

  • 한미선;윤창연;이종협
    • 청정기술
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    • 제11권3호
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    • pp.123-128
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    • 2005
  • $TiO_2$는 금속 산화물의 일종으로서 자체가 가지고 있는 물리화학적 안정성, 무독성, 탁월한 유기물의 산화분해력 등으로 인해 저농도의 환경 유해물질 정화 분야로 응용이 활발히 연구되고 있는 반도체 물질이다. 그러나 $TiO_2$는 자외선 영역대(${\lambda}$ < 387 nm, 태양광의 2.7%가 UV)의 빛을 통해서 활성을 나타내고, 여기된 전자의 빠른 전자-정공 재결합속도로 인해 광 효율이 저하되는 단점을 갖는다. 따라서 광 감응 파장대를 넓히고 재결합속도를 길게 함으로써 광효율을 높이고, 광촉매 활성을 증대하는 방향으로 연구의 초점이 모아지고 있는 실정이다. 본 연구에서는 $TiO_2$ 광촉매의 광 감응 파장대를 가시광선 영역으로 확대함과 동시에 여기된 전자와 정공의 재결합시간을 연장하기 위하여 백금(Pt)이 광침적(photodeposition)된 탄소(C) 도핑 $TiO_2$를 제조하였다. 제조한 $Pt-C-TiO_2$의 특성은 전자투과현미경(Transmission Electron Microscopic; TEM), 질소흡탈착법(Brunauer-Emmett-Teller method; BET), X-ray 회절 분석법(X-ray Diffractometer; XRD), 분광 산란 광도계(UV-visible diffuse reflectance spectroscopy; UV-Vis DRS), X-ray 광전자 광도계(X-ray Photoelectron Spectroscopy; XPS)를 통하여 살펴보았다. $Pt-C-TiO_2$의 광촉매 활성을 검증하기 위하여 아조 계열의 붉은색 염료인 Acid Red 44 ($C_{10}H_7N=NC_{10}H_3(SO_3Na)_2OH$)의 광분해 실험을 수행하였다. 광원은 Xe arc 램프(300 W, Oriel)를 사용하였으며 420 nm 이하 제거 필터를 사용하여 가시광 영역대의 빛만을 조사되도록 하였다. 그 결과, 제조한 $Pt-C-TiO_2$는 가시광선 하에서 사용제품과 비교하여 월등히 뛰어난 분해력을 보이며 $C-TiO_2$의 활성을 한 층 더 향상시킴을 확인하였다. 이는 무한 에너지 자원인 태양광을 이용한 염료 폐수 정화 시스템 응용으로의 유용한 결과라 할 수 있겠다.

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