• 제목/요약/키워드: cerium oxide

검색결과 84건 처리시간 0.026초

Structural and Spectroscopic Investigation of Ceria Nanofibers Fabricated by Electrospinning Process

  • Hwang, Ah-Reum;Park, Ju-Yun;Kang, Yong-Cheol
    • Bulletin of the Korean Chemical Society
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    • 제32권9호
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    • pp.3338-3342
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    • 2011
  • We fabricated ceria ($CeO_2$) nanofibers by applying a mixed solution of polyvinylpyrrolidone (PVP) and various concentrations of cerium nitrate hydrate ($Ce(NO_3)_3$) ranging from 15.0 to 26.0 wt % by the electrospinning process. Ceria nanofibers were obtained after calcining PVP/$Ce(NO_3)_3$ nanofiber composites at 873 and 1173 K. The SEM images indicated that the diameters of $CeO_2$ nanofibers calcined at 873 and 1173 K were smaller than those of nanofibers obtained at RT. As the amount of cerium increased, the diameter of $CeO_2$ nanofibers increased. XRD analysis revealed that the ceria nanofibers were in cubic form. TEM results revealed that the ceria nanofibers were formed by the interconnection of Ce oxide nanoparticles. The ceria nanofibers obtained at low concentrations of Ce (CeL) showed spotty ring patterns indicated that the ceria nanofibers were polycrystalline structure. And the ceria nanofibers obtained at high concentration of Ce (CeH) showed fcc (001) diffraction pattern. XPS study indicated that the oxidation of Ce shifted from $Ce^{3+}$ to $Ce^{4+}$ as the calcination temperature increased.

에탄올을 첨가한 reflux법 나노 세리아 합성

  • 조민영;이재원;박선민;최헌진
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2008년도 추계학술대회 논문집 Vol.21
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    • pp.162-162
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    • 2008
  • 세리아는 고체 산화물 연료전지(SOFC, solid oxide fuel cell)의 전해질 재료와CMP( chemical mechanical polishing) 슬러리 재료, 자동차의 3원 촉매, gas sensor, UV absorbent등 여러 분야에서 사용되고 있다. 본 연구에서는 세리아의 입자의 크기와 형상을 조절하여 성능 및 물성을 향상시켜 보다 넓은 분야의 활용을 하고자 실험을 실시하였다. 세리아 합성에 사용되는 전구체인 cerium carbonate의 특성이 세리아 분말의 물리화학적 특성에 직접적인 영향을 주기 때문에 전구체의 합성 단계에서 형상과 크기를 조절하고자 하였다. 세륨염으로 cerium nitrate hexahydrate, 균일침전반응을 할 수 있는 urea를 침전제로 사용하였다. 반응 용매의 유전상수를 조절하고 반응의 과포화도 변화를 이용하기 위하여 에탄올을 첨가하여 입자의 크기 및 형상을 조절, cubic형태의 $Ce_2O(CO_3)_2{\cdot}H_2O$ 결정상을 가지는 세리아 전구체를 합성하였다. 이렇게 생성된 전구체를 $1000^{\circ}C$에서 2시간동안 하소하여 세리아를 합성하고 반응시간, 농도, 에탄올의 함량 변화에 대해 XRD, FE-SEM, particle size analyzer, micropore physisorption analyzer 분석을 통하여 입자의 결정상과 형상, 입도 분포 및 기공분포 등을 반응인자의 변화에 따라 비교 및 해석하였다.

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강화상 나노입자의 용액 반응성이 구리 도금 박막에 미치는 영향 (Influence of Reactivity of Reinforcing Nanoparticles with Aqueous Solution on Electroplating Copper Films)

  • 박지은;오민주;김이슬;이동윤
    • 한국재료학회지
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    • 제23권12호
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    • pp.695-701
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    • 2013
  • To understand how reactivity between reinforcing nanoparticles and aqueous solution affects electrodeposited Cu thin films, two types of commercialized cerium oxide (ceria, $CeO_2$) nanoparticles were used with copper sulfate electrolyte to form in-situ nanocomposite films. During this process, we observed variation in colors and pH of the electrolyte depending on the manufacturer. Ceria aqueous solution and nickel sulfate ($NiSO_4$) aqueous solutions were also used for comparison. We checked several parameters which could be key factors contributing to the changes, such as the oxidation number of Cu, chemical impurities of ceria nanoparticles, and so on. Oxidation number was checked by salt formation by chemical reaction between $CuSO_4$ solution and sodium hydroxide (NaOH) solution. We observed that the color changed when $H_2SO_4$ was added to the $CuSO_4$ solution. The same effect was obtained when $H_2SO_4$ was mixed with ceria solution; the color of ceria solution changed from white to yellow. However, the color of $NiSO_4$ solution did not show any significant changes. We did observe slight changes in the pH of the solutions in this study. We did not obtain firm evidence to explain the changes observed in this study, but changes in the color of the electrolyte might be caused by interaction of Cu ion and the by-product of ceria. The mechanical properties of the films were examined by nanoindentation, and reaction between ceria and electrolyte presumably affect the mechanical properties of electrodeposited copper films. We also examined their crystal structures and optical properties by X-ray diffraction (XRD) and UV-Vis spectroscopy.

LiCl 용융염 중에서 희토류 산화물과 산화리튬의 반응특성에 관한 연구 (A Study on the Reaction Characteristics of Rare Earth Oxides with Lithium Oxide in LiCl Molten Salt)

  • 오승철;박성빈;김상수;도재범;박성원
    • 한국방사성폐기물학회:학술대회논문집
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    • 한국방사성폐기물학회 2003년도 가을 학술논문집
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    • pp.447-452
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    • 2003
  • 산화물 핵연료의 리튬환원공정에서 생성되는 $Li_2O$와 희토류원소 산화물($RE_2O_3$)의 화학적 반응을 밝혔다. 스칸듐, 이트륨, 프라세오디뮴, 네오디뮴, 사마륨, 유러퓸, 가돌리늄, 이테르븀 및 루테튬의 산화물은 각각 어떤 $Li_2O$의 임계농도 이상에서 $Li_2O$와 반응하여 복합산화물($LiREO_2$)을 형성하고, 이들 산화물이 복합산화물을 형성하는 각각의 $Li_2O$ 임계농도는 0.1 wt%, 1.9 wt%, 5.3 wt%, 5.0 wt%, 3.0 wt%, 3.9 wt%, 2.9 wt%, 2.6 wt% 및 0.3 wt%로 나타났다. $CeO_2$ 및 란타늄 산화물은 $Li_2O$와 반응하지 않는 것으로 나타났다. 실험에서 얻은 이들 희토류원소 복합산화물의 LiCl 용융염에 대한 용해도는 매우 작았다.

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세륨옥사이드나노입자(CNP)첨가가 치면열구전색재 기계적 성질에 미치는 영향 (Effects of Cerium Oxide Nano Particles(CNP) Containing on The Mechanical of Pit and Fissure Sealant)

  • 정미애;김동애
    • 한국콘텐츠학회논문지
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    • 제20권6호
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    • pp.433-438
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    • 2020
  • 본 연구는 세륨옥사이드나노입자(CNP)를 함유한 치면열구전색재를 제조하고 기계적 특성을 평가하고자 하였다. CNP를 상업용 ConciseTM 치면열구전색재에 0-4.0 wt% 혼합하고 비커스경도(2 × 10 mm)와 굽힙강도(2 × 2 × 25 mm) 시편을 제작 후 37℃ 수중에서 1. 7. 14일 보관하였다. 재료시험기(Instron, 3344)로 분당 1 mm/min 속도로 평가하였다. 결과는 일원배치 분산분석과 Duncan사후검정으로 실시하였다(p<0.05). 실험결과 굽힘강도와 탄성계수는 다소 차이를 보이긴 하였지만 통계적으로 유의한 차이는 나타나지 않았으며 비커스경도는 CNP첨가한 실험군에서 통계적 유의한 차이가 나타났다(p<0.05). 위의 결과는 CNP를 첨가한 치면열구전색재의 기계적 성질 향상을 위한 잠재성이 있음을 입증한 것이라 사료된다. 향후 CNP의 첨가양에 따른 효율성과 폭 넓은 임상 연구가 필요할 것으로 사료된다.

마이크로파를 이용한 황산세륨으로 개질화 된 SiC/Al2O3 촉매의 CF4 분해 특성 (Decomposition Characteristics of CF4 by SiC/Al2O3 Modified with Cerium Sulfate Using Microwave System)

  • 최성우
    • 대한환경공학회지
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    • 제37권12호
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    • pp.668-673
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    • 2015
  • 마이크로파 열분해 시스템을 이용하여 Ce 담지량이 다른 알루미나 촉매의 $CF_4$ 분해에 대한 연구를 실시하였다. 마이크로파 발열체로는 실리콘카바이드를 사용하였다. 각 촉매의 결정상은 XRD로 관찰하였으며 $CF_4$의 분해율은 GC-TCD를 사용하였다. $500^{\circ}C$ 반응온도에서 10 wt% Ce로 개질화한 알루미나가 개질화하지 않은 알루미나에 비해 $CF_4$ 분해율이 높았다. 반응속도상수 k값은 $Ce(20)/Al_2O_3=Ce(0)/Al_2O_3 순이었다. XRD 패턴은 $Ce(0)/Al_2O_3$에서는 반응 전후의 차이가 나타나지 않았으며 $Al_2O_3$의 결정구조만 관찰되었다. 반면에 Ce를 담지한 촉매에서는 산화알루미늄와 산화세륨의 혼합형으로 나타났다. 본 연구의 결과 Ce를 담지한 $Al_2O_3$촉매는 Ce를 담지하지 않은 촉매에 비해 동일한 분해율을 가지면서 반응온도를 $200^{\circ}C$ 정도를 낮출 수 있음을 보여주었다. 또한 cerium sulfate의 적정비율은 5~10 wt%임을 보여주었다.

NiFe2O4/m-ZrO2와 CeO2를 이용한 고온 태양열 열화학 싸이클의 수소 생산 (Two-step thermochemical cycles for hydrogen production using NiFe2O4/m-ZrO2 and CeO2 devices)

  • 김철숙;조지현;김동연;서태범
    • 한국태양에너지학회 논문집
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    • 제33권2호
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    • pp.93-100
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    • 2013
  • Two-step thermochemical cycle using ferrite-oxide($Fe_2O_4$) device was investigated. The $H_2O$(g) was converted into $H_2$ in the first experiment which was performed using a dish type solar thermal system. However the experiment was lasted only for 2 cycles because the metal oxide device was sintered and broken down. Another problem was that the reaction was taken place mainly on a side of the metal oxide device. The m-$ZrO_2$, which was widely known as a material preventing sintering, was applied on the metal oxide device. The ferrite loading rate and the thickness of the metal oxide device were increased from 10.67wt% to 20wt% and from 10mm to 15mm, respectively. The chemical reactor having two inlets was designed in order to supply the reactants uniformly to the metal oxide device. The second-experiment was lasted for 5 cycles, which was for 6 hours. The total amount of the $H_2$ production was 861.30ml. And cerium oxide($CeO_2$) device was used for increasing $H_2$ production rate. $CeO_2$ device had low thermal resistance, however, more $H_2$ production rate than $Fe_2O_4$ device.

Maximizing TPBs through Ni-self-exsolution on GDC based composite anode in solid oxide fuel cells

  • 탄제완;이대희;김보경;김주선;문주호
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2016년도 제50회 동계 정기학술대회 초록집
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    • pp.402.1-402.1
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    • 2016
  • The performance of solid oxide fuel cells (SOFCs) is directly related to the electrocatalytic activity of composite electrodes in which triple phase boundaries (TPBs) of metallic catalyst, oxygen ion conducting support, and gas should be three-dimensionally maximized. The distribution morphology of catalytic nanoparticle dispersed on external surfaces is of key importance for maximized TPBs. Herein in situ grown nickel nanoparticle onto the surface of fluorite oxide is demonstrated employing gadolium-nickel co-doped ceria ($Gd0.2-xNixCe0.8O2-{\delta}$, GNDC) by reductive annealing. GNDC powders were synthesized via a Pechini-type sol-gel process while maximum doping ratio of Ni into the cerium oxide was defined by X-ray diffraction. Subsequently, NiO-GNDC composite were screen printed on the both sides of yttrium-stabilized zirconia (YSZ) pellet to fabricate the symmetrical half cells. Electrochemical impedance spectroscopy (EIS) showed that the polarization resistance was decreased when it was compared to conventional Ni-GDC anode and this effect became greater at lower temperature. Ex situ microstructural analysis using scanning electron microscopy after the reductive annealing exhibited the exsolution of Ni nanoparticles on the fluorite phases. The influence of Ni contents in GNDC on polarization characteristics of anodes were examined by EIS under H2/H2O atmosphere. Finally, the addition of optimized GNDC into the anode functional layer (AFL) dramatically enhanced cell performance of anode-supported coin cells.

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기계.화학적인 연마에서 슬러리의 특성에 따른 나노토포그래피의 영향과 numerical시뮬레이션 (Effect of Slurry Characteristics on Nanotopography Impact in Chemical Mechanical Polishing and Its Numerical Simulation)

  • Takeo Katoh;Kim, Min-Seok;Ungyu Paik;Park, Jea-Gun
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2003년도 추계학술발표강연 및 논문개요집
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    • pp.63-63
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    • 2003
  • The nanotopography of silicon wafers has emerged as an important factor in the STI process since it affects the post-CMP thickness deviation (OTD) of dielectric films. Ceria slurry with surfactant is widely applied to STI-CMP as it offers high oxide-to-nitride removal selectivity. Aiming to control the nanotopography impact through ceria slurry characteristics, we examhed the effect of surfactant concentration and abrasive size on the nanotopography impact. The ceria slurries for this study were produced with cerium carbonate as the starting material. Four kinds of slurry with different size of abrasives were prepared through a mechanical treatment The averaged abrasive size for each slurry varied from 70 nm to 290 nm. An anionic organic surfactant was added with the concentration from 0 to 0.8 wt %. We prepared commercial 8 inch silicon wafers. Oxide Shu were deposited using the plasma-enhanced tetra-ethyl-ortho-silicate (PETEOS) method, The films on wafers were polished on a Strasbaugh 6EC. Film thickness before and after CMP was measured with a spectroscopic ellipsometer, ES4G (SOPRA). The nanotopogrphy height of the wafer was measured with an optical interferometer, NanoMapper (ADE Phase Shift)

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연료 개질기용 고성능 수성가스 전환반응 촉매 개발 (Development of High Performance WGS Catalyst for Fuel Processor Applications)

  • 이윤주;류종우;김대현;최은형;노원석;이상득;문동주
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2006년도 추계학술대회
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    • pp.451-454
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    • 2006
  • WGS reaction over Mo2C and ceria based catalysts was investigated to develop an alternative commercial Cu-Zn/Al2O3 catalyst for fuel processor and hydrogen station. The Mo2C catalysts were prepared by a temperature programmed method and the various metal supported cerium oxide catalysts were prepared by an Impregnation method. The catalysts were characterized by the N2 physisorption, Co chemisorption, XRD, TEM and TPR. It was found that Mo2C and 0.2wt% Pt-40wt%, Ni/CeO2 catalysts had higher activity and stability than the Cu-Zn/Al203 above $260^{\circ}C$. Moreover, CO conversion of more than 85% was observed at $280{\sim}300^{\circ}C$. But all catalysts were deactivated during the thermal cycling runs. The results suggest that these catalysts are an attractive candidate for the alternative Cu-Zn/Al2O3 catalyst for fuel processor and hydrogen station applications.

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