• 제목/요약/키워드: nanocatalyst

검색결과 48건 처리시간 0.027초

Support Effect of Catalytic Activity on 3-dimensional Au/Metal Oxide Nanocatalysts Synthesized by Arc Plasma Deposition

  • Jung, Chan Ho;Naik, B.;Kim, Sang Hoon;Park, Jeong Y.
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2013년도 제45회 하계 정기학술대회 초록집
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    • pp.140.2-140.2
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    • 2013
  • Strong metal-support interaction effect is an important issue in determining the catalytic activity for heterogeneous catalysis. In this work, we report the catalytic activity of $Au/TiO_2$, $Au/Al_2O_3$, and $Au/Al_2O_3-CeO_2$ nanocatalysts under CO oxidation fabricated by arc plasma deposition (APD), which is a facile dry process with no organic materials involved. These catalytic materials were characterized by transmission electron microscopy (TEM), energy-dispersive X-ray spectroscopy (EDS) and $N_2$-physisorption. Catalytic activity of the materials has measured by CO oxidation using oxygen, as a model reaction, in a micro-flow reactor at atmospheric pressure. Using APD, the catalyst nanoparticles were well dispersed on metal oxide powder with an average particle size (3~10 nm). As for catalytic reactivity, the result shows $Au/Al_2O_3-CeO_2$ nanocatalyst has the highest catalytic activity among three samples in CO oxidation, and $Au/TiO_2$, and $Au/Al_2O_3$ in sequence. We discuss the effects of structure and metal-oxide interactions of the catalysts on catalytic activity.

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A new nano-ZnO/perlite as an efficient catalyst for catalytic ozonation of azo dye

  • Shokrollahzadeh, Soheila;Abassi, Masoud;Ranjbar, Maryam
    • Environmental Engineering Research
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    • 제24권3호
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    • pp.513-520
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    • 2019
  • In this investigation, nano ZnO was sonochemically synthesized by a novel method using a methionine precursor. A narrow size distribution (41-50 nm) of nano ZnO was achieved that was immobilized on perlite and applied as a catalyst in catalytic ozonation. The catalyst was characterized by fourier transform infrared spectroscopy, BET surface area, and field emission scanning electron microscope. The ozonation of recalcitrant Remazol black 5 (RB5) di-azo dye solution by means of the synthesized catalyst was investigated in a bubble column slurry reactor. The influence of pH values (7, 9, 11), catalyst dosage (8, 12, 15, $20g\;L^{-1}$) and reaction time (10, 20, 30, 60 min) was investigated. Although the dye color was completely removed by single ozonation at a higher reaction time, the applied nanocatalyst improved the dye declorination kinetics. Also, the degradation of the hazardous aromatic fraction of the dye was enhanced five-times by catalytic ozonation at a low reaction time (10 min) and a neutral pH. The second-order kinetics was best fitted in terms of both RB5 color and its aromatic fraction removal. The total organic carbon analysis indicated a significant improvement in the mineralization of RB5 by catalytic ozonation using the nano-ZnO/perlite catalyst.

Catalytic Activity of Au/$TiO_2$ and Pt/$TiO_2$ Nanocatalysts Prepared with Arc Plasma Deposition under CO Oxidation

  • Jung, Chan Ho;Kim, Sang Hoon;Sahu, Nruparaj;Park, Dahee;Yun, Jung Yeul;Ha, Heonphil;Park, Jeong Young
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2013년도 제44회 동계 정기학술대회 초록집
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    • pp.288-288
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    • 2013
  • We report the catalytic activity of Au/$TiO_2$ and Pt/$TiO_2$ nanocatalysts under CO oxidation fabricated by arc plasma deposition (APD), which is a facile dry process with no organic materials involved. Using APD, the catalyst nanoparticles were well dispersed on $TiO_2$ powder with an average particle size (2~4 nm) well below that of nanoparticles prepared by the sol-gel method (10 nm). We found that the average particle size of the dispersed gold nanoparticles can be controlled by changing the plasma discharge voltage of APD. Accordingly, the amount of loaded gold on the $TiO_2$ powder increased with increasing discharge voltage, but the specific surface area of the Au/$TiO_2$ samples decreased. As for catalytic reactivity, Au/$TiO_2$ showed a higher catalytic activity than Pt/$TiO_2$ in CO oxidation. The catalytic activity of the Au/$TiO_2$ samples showed size dependence where higher catalytic activity occurred on smaller gold nanoparticles. The study suggests that APD is a simple way to fabricate catalytically active nanocatalysts.

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Catalytic Activity of Au/$TiO_2$ and Pt/$TiO_2$ Nanocatalysts Synthesized by Arc Plasma Deposition

  • Jung, Chan-Ho;Kim, Sang-Hoon;Reddy, A.S.;Ha, H.;Park, Jeong-Y.
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2012년도 제42회 동계 정기 학술대회 초록집
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    • pp.245-245
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    • 2012
  • Syntheses of oxide supported metal catalysts by wet-chemical routes have been well known for their use in heterogeneous catalysis. However, uniform deposition of metal nanoparticles with controlled size and shape on the support with high reproducibility is still a challenge for catalyst preparation. Among various synthesis methods, arc plasma deposition (APD) of metal nanoparticles or thin films on oxide supports has received great interest recently, due to its high reproducibility and large-scale production, and used for their application in catalysis. In this work, Au and Pt nanoparticles with size of 1-2 nm have been deposited on titania powder by APD. The size of metal nanoparticles was controlled by number of shots of metal deposition and APD conditions. These catalytic materials were characterized by x-ray diffraction (XRD), inductively coupled plasma (ICP-AES), CO-chemisorption and transmission electron microscopy (TEM). Catalytic activity of the materials was measured by CO oxidation using oxygen, as a model reaction, in a micro-flow reactor at atmospheric pressure. We found that Au/$TiO_2$ is reactive, showing 100% conversion at $110^{\circ}C$, while Pt/$TiO_2$ shows 100% conversion at $200^{\circ}C$. High activity of metal nanoparticles suggests that APD can be used for large scale synthesis of active nanocatalysts. We will discuss the effect of the structure and metal-oxide interactions of the catalysts on catalytic activity.

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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.

자가면역글로불린 G 측정을 위한 표면탄성파 바이오센서에 대한 연구 (Study of the Surface Acoustic Wave Biosensors for Detection of the Immunoglobulin G)

  • 김기범;정우석;박영란;김상진;김성종;강형섭;김진상;홍철운
    • Korean Chemical Engineering Research
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    • 제49권2호
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    • pp.224-229
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    • 2011
  • 본 연구에서 탄성표면파(SH-SAW) 디바이스의 지연선에 코팅된 골드 위에서 면역 글로불린 G(IgG) 검출을 위한 SH-SAW 센서를 개발하고자 하였다. 실험결과, 금표면 위에 anti-MIgG 혼합물을 일관되게 고정시킬 수 있었다. G-anti MIgG 혼합물과 blocking buffer를 이용한 골드 표면 위에 고정화 하였을 때 주파수 변위를 측정한 결과, G-anti MIgG 는 초기 주파수에서 75.1 kHz 주파수 변위를 보였으며 blocking buffer는 215.7 kHz의 주파수 변위를 보였다. 100 MHz 센서에서 MIgG의 농도가 25, 50, 75, 100 ${\mu}g$일 때 46.3, 127.45, 161.21, 262.39 kHz 주파수 변위를 보였다.

개미산 분해 반응에서 수소 생산성 증대를 위한 Pd/Pd3Fe 합금 촉매: 범밀도 함수 이론 연구 (Pd/Pd3Fe Alloy Catalyst for Enhancing Hydrogen Production Rate from Formic Acid Decomposition: Density Functional Theory Study)

  • 조진원;한종희;윤성필;남석우;함형철
    • Korean Chemical Engineering Research
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    • 제55권2호
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    • pp.270-274
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    • 2017
  • 본 연구에서는 양자 역학 계산 이론 중 하나인 Density Functional Theory (DFT)를 사용하여 $Pd/Pd_3Fe$ 촉매 표면에서 개미산(HCOOH) 분해 반응으로부터 수소를 생산하는 반응 메커니즘을 분석하였다. 기존 연구에 따르면, 단일 원자 촉매 중에서 개미산 분해 반응에 가장 높은 수소 생산성을 기록하는 원자는 Pd 촉매이지만, 부 반응으로 생산되는 CO가 Pd에 독성을 띄우기 때문에 Pd 촉매의 성능을 저하시킨다. 이러한 단점을 극복하고자, Pd를 기반으로 Pd와 Fe를 3:1로 합금하여 $Pd_3Fe$가 코어(core) 형태로 존재하고 Pd가 표면에 위치한 core-shell $Pd/Pd_3Fe$ 촉매를 설계하여 개미산 분해 반응에 의한 수소 생산 속도를 계산하였다. 순수 Pd촉매 보다 $Pd/Pd_3Fe$ 촉매의 수소 생산 반응의 활성 에너지가 감소하였다. 그 이유는 Pd와 Fe가 합금화 되면서 $Pd_3Fe$의 격자 상수가 $2.76{\AA}$로 줄어 들어 HCOO의 흡착에너지를 0.03 eV 감소시켰고, Fe에서 표면 Pd로 전자가 이동하면서 표면 전자 구조가 변화하여 HCOO의 흡착에너지를 0.29 eV 낮추었기 때문이다. 본 연구에서 제안하는 결과를 바탕으로 추후 개미산으로부터 수소 생산이 더 용이한 새로운 촉매 설계 메커니즘을 제안하고자 한다.

전이금속 디칼코제나이드 나노촉매를 이용한 태양광 흡수 광화학적 물분해 연구 (Transition Metal Dichalcogenide Nanocatalyst for Solar-Driven Photoelectrochemical Water Splitting)

  • 유지선;차은희;박정희;임수아
    • 전기화학회지
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    • 제23권2호
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    • pp.25-38
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    • 2020
  • 태양광 흡수 물분해는 화석연료 대체 에너지원으로 떠오르는 수소에너지를 생산할 수 있는 가장 유망한 방법이다. 현재 전이 금속 디칼코제나이드 (transition dichalcogenide, TMD)는 물분해 촉매 특성이 뛰어난 물질로 많은 관심을 끌고 있다. 본 연구에서는 실리콘 (Si) 나노선 어레이 전극 표면에 대표적 TMD 물질인 4-6족의 이황화 몰리브덴 (MoS2), 이셀렌화 몰리브덴(MoSe2), 이황화 텅스텐 (WS2), 이셀렌화 텅스텐 (WSe2) 나노시트 합성할 수 있는 방법을 개발하였다. Si나노선 전극을 금속 이온 용액으로 코팅하고, 황 또는 셀레늄의 화학 기상 증착법(chemical vapor deposition)을 이용하는 것이다. 이 방법으로 TMD 나노시트를 약 20 nm 두께로 균일하게 합성하였다. p형 Si-TMD 나노선 광전극으로 구성된 광화학전지는 태양광 AM1.5G, 0.5 M H2SO4 전해질에서 개시 전위 0.2 V를 가지며 0 V (vs. RHE)에서 20 mA cm-2 이상의 전류를 낼 수 있다. 수소 발생 양자효율은 90% 정도로 우수한 물분해 촉매 특성을 확인하였다. MoS2 및 MoSe2는 3시간 동안 90% 이상의 우수한 광전류 안전성을 보여주었으나, WS2 및 WSe2는 상대적으로 적은 80%였다. MoS2, MoSe2는 Si 나노선 표면에 균일한 시트 형태로 씌워졌지만, WS2, WSe2는 조각 형태로 붙었다. 따라서 Si 표면을 잘 보호하지 못하기 때문에 Si나노선이 더 잘 산화되어 안정성이 낮아지는 것으로 해석하였다. 본 연구결과는 TMD의 수소 발생 촉매 특성을 이해하는 데 크게 기여할 것으로 예상한다.