• 제목/요약/키워드: Metal Oxide Catalyst

검색결과 163건 처리시간 0.043초

국제 공동 연구를 통한 태양에너지 활용 열화학 물분해 그린 수소 생산 연구 및 E-fuel 생산 연구 동향 보고 (Hydrogen and E-Fuel Production via Thermo-chemical Water Splitting Using Solar Energy)

  • 조현석
    • 신재생에너지
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    • 제20권1호
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    • pp.110-115
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    • 2024
  • Global sustainable energy needs and carbon neutrality goals make hydrogen a key future energy source. South Korea and Japan lead with proactive hydrogen policies, including South Korea's Hydrogen Law and Japan's strategy updates aiming for a hydrogen-centric society by 2050. A notable advance is the solar thermal chemical water-splitting cycle for green hydrogen production, spotlighted by Korea Institute of Energy Research (KIER) and Niigata University's joint initiative. This method uses solar energy to split water into hydrogen and oxygen, offering a carbon-neutral hydrogen production route. The study focuses on international collaboration in solar energy for thermochemical water-splitting and E-fuel production, highlighting breakthroughs in catalyst and reactor design to enhance solar thermal technology's commercial viability for sustainable fuel production. Collaborations, like ARENA in Australia, target global carbon emission reduction and energy system sustainability, contributing to a cleaner, sustainable energy future.

Vertically Standing Graphene on Glass Substrate by PECVD

  • Ma, Yifei;Hwang, Wontae;Jang, Haegyu;Chae, Heeyeop
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2014년도 제46회 동계 정기학술대회 초록집
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    • pp.232.2-232.2
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    • 2014
  • Since its discovery in 2004, graphene, a sp2-hybridized 2-Dimension carbon material, has drawn enormous attention. A variety of approaches have been attempted, such as epitaxial growth from silicon carbide, chemical reduction of graphene oxide and CVD. Among these approaches, the CVD process takes great attention due to its guarantee of high quality and large scale with high yield on various transition metals. After synthesis of graphene on metal substrate, the subsequent transfer process is needed to transfer graphene onto various target substrates, such as bubbling transfer, renewable epoxy transfer and wet etching transfer. However, those transfer processes are hard to control and inevitably induce defects to graphene film. Especially for wet etching transfer, the metal substrate is totally etched away, which is horrendous resources wasting, time consuming, and unsuitable for industry production. Thus, our group develops one-step process to directly grow graphene on glass substrate in plasma enhanced chemical vapor deposition (PECVD). Copper foil is used as catalyst to enhance the growth of graphene, as well as a temperature shield to provide relatively low temperature to glass substrate. The effect of growth time is reported that longer growth time will provide lower sheet resistance and higher VSG flakes. The VSG with conductivity of $800{\Omega}/sq$ and thickness of 270 nm grown on glass substrate can be obtained under 12 min growing time. The morphology is clearly showed by SEM image and Raman spectra that VSG film is composed of base layer of amorphous carbon and vertically arranged graphene flakes.

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SOFC anode용 나노구형 Ni(1-x)-M(x=0~0.15)(M=Co, Fe) alloy 분말 합성 및 그 특성 (Synthesis and Characterization of Spherical Nano Ni(1-x)-M(x=0~0.15)(M=Co, Fe) Alloy Powder for SOFC Anode)

  • 이민진;최병현;지미정;안용태;홍선기;강영진;황해진
    • 한국세라믹학회지
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    • 제51권4호
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    • pp.367-373
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    • 2014
  • In this study, the reducing agent hydrazine and precipitator NaOH were used with $NiCl_2$ as a starting material in order to compound Ni-based material with spherical nano characteristics; resulting material was used as an anode for SOFC. Synthetic temperature, pH, and solvent amounts were experimentally optimized and the synthesis conditions were confirmed. Also, a 0 ~ 0.15 mole ratio of metal(Co, Fe) was alloyed in order to increase the catalyst activation performance of Ni and finally, spherical nano $Ni_{(1-x)}-M_{(x=0{\sim}0.15)}$(M = Co, Fe) alloy materials were compounded. In order to evaluate the catalyst activation for hydrocarbon fuel, fuel gas(10%/$CH_4$+10%/Air) was added and the responding gas was analyzed with GC(Gas Chromatography). Catalyst activation improvement was confirmed from the 3% hydrogen selectivity and 2.4% methane conversion rate in $Ni_{0.95}-Co_{0.05}$ alloy; those values were 4.4% and 19%, respectively, in $Ni_{0.95}-Fe_{0.05}$ alloy.

전착법을 이용한 촉매-기판 일체형 구리 코발트 산화물 전극 개발 및 음이온 교환막 수전해 적용 (Development of catalyst-substrate integrated copper cobalt oxide electrode using electrodeposition for anion exchange membrane water electrolysis)

  • 김도형;김글한;최승목;이지훈;정재훈;이경복;양주찬
    • 한국표면공학회지
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    • 제55권3호
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    • pp.180-186
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    • 2022
  • The production of hydrogen via water electrolysis (i.e., green hydrogen) using renewable energy is key to the development of a sustainable society. However, most current electrocatalysts are based on expensive precious metals and require the use of highly purified water in the electrolyte. We demonstrated the preparation of a non-precious metal catalyst based on CuCo2O4 (CCO) via simple electrodeposition. Further, an optimization process for electrodeposition potential, solution concentration and electrodeposition method was develop for a catalyst-substrate integrated electrode, which indicated the highly electrocatalytic performance of the material in electrochemical tests and when applied to an anion exchange membrane water electrolyzer.

Selective Growth of Nanosphere Assisted Vertical Zinc Oxide Nanowires with Hydrothermal Method

  • Lee, Jin-Su;Nam, Sang-Hun;Yu, Jung-Hun;Yun, Sang-Ho;Boo, Jin-Hyo
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2013년도 제45회 하계 정기학술대회 초록집
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    • pp.252.2-252.2
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    • 2013
  • ZnO nanostructures have a lot of interest for decades due to its varied applications such as light-emitting devices, power generators, solar cells, and sensing devices etc. To get the high performance of these devices, the factors of nanostructure geometry, spacing, and alignment are important. So, Patterning of vertically- aligned ZnO nanowires are currently attractive. However, many of ZnO nanowire or nanorod fabrication methods are needs high temperature, such vapor phase transport process, metal-organic chemical vapor deposition (MOCVD), metal-organic vapor phase epitaxy, thermal evaporation, pulse laser deposition and thermal chemical vapor deposition. While hydrothermal process has great advantages-low temperature (less than $100^{\circ}C$), simple steps, short time consuming, without catalyst, and relatively ease to control than as mentioned various methods. In this work, we investigate the dependence of ZnO nanowire alignment and morphology on si substrate using of nanosphere template with various precursor concentration and components via hydrothermal process. The brief experimental scheme is as follow. First synthesized ZnO seed solution was spun coated on to cleaned Si substrate, and then annealed $350^{\circ}C$ for 1h in the furnace. Second, 200nm sized close-packed nanospheres were formed on the seed layer-coated substrate by using of gas-liquid-solid interfacial self-assembly method and drying in vaccum desicator for about a day to enhance the adhesion between seed layer and nanospheres. After that, zinc oxide nanowires were synthesized using a low temperature hydrothermal method based on alkali solution. The specimens were immersed upside down in the autoclave bath to prevent some precipitates which formed and covered on the surface. The hydrothermal conditions such as growth temperature, growth time, solution concentration, and additives are variously performed to optimize the morphologies of nanowire. To characterize the crystal structure of seed layer and nanowires, morphology, and optical properties, X-ray diffraction (XRD), field emission scanning electron microscopy (FE-SEM), Raman spectroscopy, and photoluminescence (PL) studies were investigated.

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용출 현상 기반 나노촉매의 개발 및 응용 (Development and application of ex-solution nanocatalyst)

  • 김준혁;김준규;정우철
    • 세라미스트
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    • 제23권2호
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    • pp.200-210
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    • 2020
  • Supported catalysts are at the heart of manufacturing essential chemical, agricultural and pharmaceutical products. While the longevity of such systems is critically hinged on the durability of metal nanoparticles, the conventional deposition/dispersion techniques are difficult to enhance the stability of the metal nanoparticles due to the lack of control over the interaction between metal-support. Regarding this matter, ex-solution has begun to be recognized as one of the most promising methodologies to develop thermally and chemically robust nanoparticles. By dissolving desired catalysts as a cation form into a parent oxide, fine and uniformly distributed metal nano-catalysts can be subsequently grown in situ under reductive heat treatment, which is referred to ex-solution. Over the several years, ex-solved analog has resulted in tremendous progress in the chemical-electrochemical applications due to the exceptional robustness coupled with ease synthesis. Herein, we describe the ex-solution process in detail which therein introducing the unique characteristics of ex-solved particles that distinguish them from conventionally dispersed nanoparticles. We then go through the history of science regarding the ex-solution phenomena and summarize several major research achievements which embrace the ex-solved nanoparticles to markedly promote the catalytic performances. In conclusion, we address the remaining challenges and the future perspectives of this rapidly growing field.

금속산화물 촉매상에서 플라즈마를 이용한 IPA 저감 (Plasma-assisted Catalysis for the Abatement of Isopropyl Alcohol over Metal Oxides)

  • 조진오;이상백;장동룡;박종호;목영선
    • 청정기술
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    • 제20권4호
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    • pp.375-382
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    • 2014
  • 금속산화물이 담지된 허니컴 형상의 플라즈마-촉매 반응기를 이용하여 아이소프로필 알코올(isopropyl alcohol, IPA) 저감 및 부산물 생성 거동에 대해 조사하였다. 허니컴 형상의 다공질 세라믹 지지체(주성분: ${\alpha}-Al_2O_3$)에 금속산화물로 산화철($Fe_2O_3$) 또는 산화구리(CuO)를 담지시킨 후, 이 촉매가 동축 원통형 전극구조 내부에 위치하도록 플라즈마-촉매 반응기를 구성하였다. 플라즈마 반응에 의한 IPA 분해속도가 매우 빨랐기 때문에 IPA 분해효율 자체는 금속산화물 담지 여부 및 금속산화물 종류에 관계없이 유사한 것으로 나타났으나, 부산물 생성거동은 촉매종류에 따라 큰 차이를 보여주었다. 아세톤, 폼알데하이드, 아세트알데하이드, 메테인, 일산화탄소 등의 유해 부산물 농도는 $Fe_2O_3/{\alpha}-Al_2O_3$ < $CuO/{\alpha}-Al_2O_3$ < ${\alpha}-Al_2O_3$ 순으로 높게 나타났다. 유량 $1L\;min^{-1}$, IPA 초기농도 5,000 ppm(산소: 10%), 방전전력 47 W의 조건에서 얻어진 $CO_2$ 선택도는 ${\alpha}-Al_2O_3$, $CuO/{\alpha}-Al_2O_3$, $Fe_2O_3/{\alpha}-Al_2O_3$에 대해 각각 40, 80, 95%로서 $Fe_2O_3/{\alpha}-Al_2O_3$가 플라즈마-촉매를 이용한 IPA의 산화에 가장 효과적인 것으로 나타났다. 플라즈마를 단독으로 사용하여 휘발성유기화합물을 분해할 경우 타르형태의 생성물이 반응기에 퇴적되는 문제점이 있으나, 플라즈마-촉매 공정에서는 이러한 현상이 관찰되지 않았으며 촉매의 활성이 그대로 유지되었다.

그래핀 기반 광촉매 담지 세라믹필터에서 질소산화물(NOx)의 제거 (Removal of NOx from Graphene based Photocatalyst Ceramic Filter)

  • 김용석;김영호
    • 공업화학
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    • 제33권6호
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    • pp.600-605
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    • 2022
  • V2O5-WO3-TiO2 촉매를 담지하여 그래핀(graphene) 기반 세라믹필터를 제조하였으며, 이를 활용하여 질소산화물(NOx)의 제거실험을 수행하였다. 산화그래핀(graphene oxide, GO)은 흑연(graphite)을 이용하여 Hummer's method에 의해 제조하였고 환원제로 히드라진(N2H4)을 통해 환원 산화그래핀(reduced graphene oxide, rGO)을 제조하였다. 제조된 그래핀을 세라믹필터 표면에 유-무기 하이브리드 원리를 이용하여 코팅하였으며, 여기에 광촉매물질을 담지하였다. 광촉매물질은 바나듐(V), 텅스텐(W), 티타늄(Ti)를 사용하여 sol-gel법에 의해 코팅 후 350 ℃ 소성 공정을 통하여 광촉매담지 세라믹필터를 제조하였다. UV광을 제조된 필터에 조사하여 NOx의 제거 실험을 수행하였으며, NOx의 제거 효율은 기존의 세라믹필터보다 GO 및 rGO가 코팅된 경우가 우수하였다. 이는 코팅된 그래핀에 의한 흡착성의 향상 때문으로 판단되며, 그래핀의 농도가 증가함에 따라 보다 높은 NOx의 제거효율을 확인하였다.

열처리 온도가 전기방사방법을 이용하여 제조한 PEMFC용 TiO2 담체의 물리적 특성에 미치는 영향 (Effects of Calcination Temperature on Characteristics of Electrospun TiO2 Catalyst Supports for PEMFCs)

  • 권초롱;유성종;장종현;김형준;김지현;조은애
    • 한국수소및신에너지학회논문집
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    • 제24권3호
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    • pp.223-229
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    • 2013
  • Polymer Electrolyte Membrane Fuel Cell (PEMFC) is a power generation system to convert chemical energy of fuels and oxidants to electricity directly by electrochemical reactions. As a catalyst support for PEMFCs, carbon black has been generally used due to its large surface area and high electrical conductivity. However, under certain circumstances (start up/shut down, fuel starvation, ice formation etc.), carbon supports are subjected to serve corrosion in the presence of water. Therefore, it would be desirable to switch carbon supports to corrosion-resistive support materials such as metal oxide. $TiO_2$ has been attractive as a support with its stability in fuel cell operation atmosphere, low cost, commercial availability, and the ease to control size and structure. However, low electrical conductivity of $TiO_2$ still inhibits its application to catalyst support for PEMFCs. In this paper, to explore feasibility of $TiO_2$ as a catalyst support for PEMFCs, $TiO_2$ nanofibers were synthesized by electrospinning and calcinated at 600, 700, 800 and $900^{\circ}C$. Effects of calcination temperature on crystal structure and electrical conductivity of electrospun $TiO_2$ nanofibers were examined. Electrical conductivity of $TiO_2$ nanofibers increased significantly with increasing calcination temperature from $600^{\circ}C$ to $700^{\circ}C$ and then increased gradually with increasing the calcination temperature from $700^{\circ}C$ to $900^{\circ}C$. It was revealed that the remarkable increase in electrical conductivity could be attributed to phase transition of $TiO_2$ nanofibers from anatase to rutile at the temperature range from $600^{\circ}C$ to $700^{\circ}C$.

플라즈마/촉매 공정을 이용한 n-헵테인과 일산화탄소 동시제거 (Combined Removal of n-heptane and CO using Plasma-catalytic Process)

  • 이상백;조진오;목영선
    • 한국가스학회지
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    • 제20권2호
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    • pp.1-9
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    • 2016
  • 본 연구는 플라즈마/촉매 공정을 이용하여 n-헵테인과 일산화탄소의 동시제거에 대해 조사하였다. n-헵테인과 일산화탄소의 분해특성을 파악하기 위해 플라즈마/촉매 공정과 촉매공정의 분해효율을 비교하였고, 촉매의 종류, 온도, 전력 등을 변화시켜 실험을 진행하였다. n-헵테인의 분해효율은 반응기 내부의 온도보다는 에너지밀도에 더 영향을 많이 받는 것으로 확인되었으며, 일산화탄소는 에너지밀도와 반응기 내부 온도 모두의 영향을 받는 것으로 나타났다. 촉매의 종류를 달리하며 n-헵테인의 분해효율을 조사한 결과 $Pd/{\gamma}-Al_2O_3$ > $Ru/{\gamma}-Al_2O_3{\approx}Ag/{\gamma}-Al_2O_3$순으로 나타났다. 특히, $Pd/{\gamma}-Al_2O_3$를 사용한 경우 n-헵테인 분해 과정에서 일산화탄소가 거의 발생하지 않았으며, $CO_2$ 선택도가 100%에 가까웠다. 일산화탄소 분해효율은 $Pd/{\gamma}-Al_2O_3$ > $Ru/{\gamma}-Al_2O_3$ > $Ag/{\gamma}-Al_2O_3$ 순으로 나타났으며, $180^{\circ}C$이하의 온도에서는 플라즈마/촉매 공정의 효율이 높고, $180^{\circ}C$이상에서는 촉매 공정의 분해효율이 높았다.