• 제목/요약/키워드: $Ru^{+3}

검색결과 829건 처리시간 0.026초

Understanding Deactivation of Ru Catalysts by In-situ Investigation of Surface Oxide Stability under CO Oxidation and Oxidative/Reductive Conditions

  • Qadir, Kamran;Joo, Sang-Hoon;Mun, Bong-Jin S.;Park, Jeong-Young
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2011년도 제41회 하계 정기 학술대회 초록집
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    • pp.212-212
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    • 2011
  • In addition to the catalysts' activity and selectivity, the deactivation of catalysts during use is of practical importance. It is crucial to understand the phenomena of the deactivation to predict the loss of activity during catalyst usage so that the high operational costs associated with catalyst replacement can be reduced. In this study, the activity of Ru catalysts, such as nanoparticles (3~6 nm) and polycrystalline thin film (50 nm), have been investigated under CO oxidation and oxidative/reductive reaction conditions at various temperatures with the ambient pressure X-Ray photoelectron spectroscopy (APXPS). With APXPS, the surface oxides on the catalyst are measured and monitored in-situ. It was found that the Ru film exhibited faster oxidation-and-reduction compared to that of nanoparticles showing mild oxidative-and-reductive characteristics. Additionally, the larger Ru nanoparticles showed a higher degree of oxide formation at all temperatures, suggesting a higher stability of the oxide. These observations are in agreement with the catalytic activity of Ru catalysts. The loss of activity of Ru films is correlated with bulk oxide formation, which is inactive in CO oxidation. The Ru nanoparticle, however, does not exhibit deactivation under similar conditions, suggesting that its surface is covered with a highly active ultrathin surface oxide. Since the active oxide is more stable as nanoparticles than as a film, the nanoparticles showed mild oxidative/reductive behavior, as confirmed by APXPS results. We believe these simultaneous observations of both the surface oxide of Ru catalysts and the reactivity in real time enable us to pinpoint the deactivation phenomena more precisely and help in designing more efficient and stable catalytic systems.

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전기 환원법을 이용한 고분자 전해질 연료전지용 PtRu 전극제조 (Preparation of PtRu catalysts Using Galvanostatic Pulse Electrodeposition on Nafion(Na+) bonded Carbon Layer for PEMFC)

  • 라영미;이재승;김하석
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2006년도 추계학술대회
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    • pp.411-412
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    • 2006
  • PEM(proton exchange membrane) fuel cell have been receiving considerable interest as power source because of high-energy efficiency. However by using reforming hydrogen gas, CO poisoning occur in anode. To improve CO tolerance PtRu catalysts were prepared by galvanostatic pulse electrodeposition. The composition(atomic ratio) of catalysts are controllable by using different concentrations of PtRu solutions. Also, the particle sizes of PtRu on carbon are similar to about $3.5{\sim}4nm$ regardless of concentration.

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민간약 머루잎의 생약학적 연구 (Pharmacognostical Studies on the Folk 'Medicine MeoRuIp')

  • 박종희;배지영;김성룡
    • 생약학회지
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    • 제40권3호
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    • pp.165-172
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    • 2009
  • Korean folk medicine 'MeoRuIp' has been used to cure cough, rheumatism and abdominal pain after child birth. There has been no pharmacognostical confirmation on the botanical origin of the crude drug. To clarify the botanical origin of 'MeoRuIp', the morphological and anatomical characteristics of the leaves of Vitis and Ampelopsis species growing in Korea, i.e. Vitis amurensis, V. amurensis forma. glabrescens, V. flexuosa, V. thunbergii var. sinuata and Ampelopsis brevipedunculata var. heterophylla were studied. As a result, it was clarified that 'MeoRuIp' was the leaf of Vitis amurensis and Vitis flexuosa.

Effect of Thermal Treatment on the Electrocatalytic Activities and Surface Roughness of ITO Electrodes

  • Choi, Moon-Jeong;Jo, Kyung-Mi;Yang, Hae-Sik
    • Journal of Electrochemical Science and Technology
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    • 제3권1호
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    • pp.24-28
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    • 2012
  • The electrocatalytic activities and surface roughness of indium-tin-oxide (ITO) electrodes have been investigated after thermal treatment at 100, 150, or $200^{\circ}C$ for 30 min, 2 h, or 8 h. To check electrocatalytic activities, the electrochemical behavior of four electroactive species (p-hydroquinone, $Ru(NH_3){_6}^{3+}$, ferrocenemethanol, and $Fe(CN){_6}^{4-}$) has been measured. The electron transfer rate for p-hydroquinone oxidation and ferrocenemethanol oxidation increases with increasing the incubation temperature and the incubation period of time, but the rate for $Ru(NH_3){_6}^{3+}$ is similar irrespective of the incubation temperature and period because $Ru(NH_3){_6}^{3+}$ undergoes a fast outer-sphere reaction. Overall, the electrocatalytic activities of ITO electrodes increase with increasing the incubation temperature and period. The surface roughness of ITO electrodes increases with increasing the incubation temperature, and the thermal treatment generates many towering pillars as high as several tens of nanometer.

Cu/hexaaluminate 펠렛 촉매를 이용한 친환경 액체 추진제 분해 반응에 미치는 조촉매의 영향 (Effect of Promoter on the Decomposition of Eco-Frendly Liquid Monopropellant on Cu/hexaaluminate Pellet Catalyst)

  • 김문정;김우람;조영민;전종기
    • 청정기술
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    • 제26권3호
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    • pp.196-203
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    • 2020
  • 본 연구에서는 Cu/hexaaluminate를 공침법으로 제조한 후, 바인더를 첨가하여 펠렛 형태로 성형하였다. 니켈 및 루테늄 조촉매의 첨가가 Cu/hexaaluminate pellet 촉매의 특성과 ADN계 액체 단일 추진제의 분해 반응에 미치는 영향을 고찰하는데 초점을 두었다. Cu/hexaaluminate pellet 촉매는 미세 기공은 거의 없으며 메조 기공이 발달한 촉매이다. Cu/hexaaluminate pellet 촉매에 루테늄을 조촉매로 첨가하면 기공의 부피와 기공의 크기는 큰 폭으로 증가하였다. ADN 기반 액체 단일 추진제의 열분해 반응에서 분해 개시 온도는 170.2 ℃이다. Cu/hexaaluminate pellet 촉매를 사용한 경우, 분해 개시 온도는 93.5 ℃로 크게 감소한 것을 확인하였다. 루테늄 1% 및 3%를 조촉매로 첨가했을 때, ADN 기반 액체 단일 추진제 분해 개시 온도가 각각 91.0 ℃와 83.3 ℃로 낮아졌다. 즉, 루테늄 조촉매가 ADN 기반 액체 단일 추진제의 분해 개시 온도를 낮추는데 효과가 있다는 것을 의미한다. 이는 루테늄 금속이 ADN 기반 액체 단일 추진제 분해 반응에 활성이 뛰어나면서, 동시에 기공 부피와 기공의 크기를 증가시키는데 기여하였기 때문이다. Cu/hexaaluminate pellet 촉매의 내열성에 루테늄이 미치는 영향을 확인하기 위하여 1200 ℃에서의 열처리와 ADN 기반 액체 단일 추진제 분해 실험을 반복적으로 수행한 결과, 루테늄의 첨가 비율이 증가함에 따라 내열성이 증가하는 것을 확인할 수 있었다.