• 제목/요약/키워드: Ionomer to carbon ratio

검색결과 5건 처리시간 0.023초

PTC Behavior of Polymer Composites Containing Ionomers upon Electron Beam Irradiation

  • Kim, Jong-Hawk;Cho, Hyun-Nam;Kim, Seong-Hun;Kim, Jun-Young
    • Macromolecular Research
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    • 제12권1호
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    • pp.53-62
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    • 2004
  • We have prepared polymer composites of low-density polyethylene (LDPE) and ionomers (Surlyn 8940) containing polar segments and metal ions by melt blending with carbon black (CB) as a conductive filler. The resistivity and positive temperature coefficient (PTC) of the ionomer/LDPE/CB composites were investigated with respect to the CB content. The ionomer content has an effect on the resistivity and percolation threshold of the polymer composites; the percolation curve exhibits a plateau at low CB content. The PTC intensity of the crosslinked ionomer/LDPE/CB composite decreased slightly at low ionomer content, and increased significantly above a critical concentration of the ionomer. Irradiation-induced crosslinking could increase the PTC intensity and decrease the NTC effect of the polymer composites. The minimum switching current (Ι$\sub$trip/) of the polymer composites decreased with temperature; the ratio of Ι$\sub$trip/ for the ionomer/LDPE/CB composite decreased to a greater extent than that of the LDPE/CB composite. The average temperature coefficient of resistance (${\alpha}$$\sub$T/) for the polymer composites increased in the low-temperature region.

고분자 전해질 연료전지용 수소극 촉매층의 이오노머 함량 영향 (Effect of Ionomer Content on the Anode Catalyst Layers of PEM Fuel Cells)

  • 박범준;이선호;우승희;박석희;정남기;임성대
    • 한국수소및신에너지학회논문집
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    • 제30권6호
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    • pp.523-530
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    • 2019
  • For the low-Pt electrodes for polymer electrolyte fuel cells (PEMFCs), the optimization of ionomer content for anode catalyst layers was carried out. A commercial catalyst of 20 wt.% Pt/C was used instead of 50 wt.% Pt/C which is commonly used for PEMFCs. The ionomer content varies from 0.6 to 1.2 based on ionomer to carbon ratio (I/C) and the catalyst layer is formed over the electrolyte by the ultrasonic spray process. Evaluation of the prepared MEA in the unit cell showed that the optimal ionomer content of the air electrode was 0.8 on the I/C basis, while the hydrogen electrode was optimal at the relatively high ionomer content of 1.0. In addition, a large difference in cell performance was observed when the ionomer content of the hydrogen electrode was changed. Increasing the ionomer content from 0.6 to 1.0 by I/C in a hydrogen electrode with 0.05 mg/㎠ platinum loading resulted in more than double cell performance improvements on a 0.6 V. Through the analysis of various electrochemical properties in the single cell, it was assumed that the change in ionomer content of the hydrogen electrode affects the water flow between the hydrogen and air electrodes bounded by the membrane in the cell, which affects the overall performance of the cell. A more specific study will be carried out to understand the water flow mechanism in the future, and this study will show that the optimization process of hydrogen electrode can also be a very important cell design variable for the low-Pt and high-performance MEA.

20, 40 wt% Pt/C 촉매를 사용한 MEA제조에서 나피온의 최적비 (Optimum Ratio between Nafion and 20, 40 wt% Pt/C Catalysts for MEAs)

  • 정주해;정동원;김준범
    • 전기화학회지
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    • 제14권1호
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    • pp.50-55
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    • 2011
  • Pt/C 촉매 (20, 40 wt% Pt/C)를 사용하여 고분자 전해질 연료전지의 MEA를 제조하고 각각의 촉매에서 최적의 나피온 이오노머 함량을 알아보았다. 나피온 함량에 따른 MEA의 전기화학적인 성능변화는 단위전지 성능평가, electrochemical impedance spectroscopy (EIS), cyclic voltammetry(CV)을 통해서 분석하였다. 나피온의 함량에 따라 전지의 활성화 분극, 옴 저항, 물질전달 저항 등의 변화가 나타났다. 이는 전극의 촉매층 내에서 발생되는 전기/이온 전도도 사이의 'trade-off'와 물질전달(물 배출과 반응가스 확산)에 의한 것이며, 대부분 활성화 분극과 물질전달 저항의 변화로 나타났다. 20 wt% Pt/C와 40 wt% Pt/C 촉매에서 최적의 나피온 함량은 각각 35 wt%와 20 wt%로 나타났다. 이는 Pt 중량비에 따른 Pt 입자간의 거리 및 촉매의 비표면적의 차이 때문에 나타난 결과이며 서로 다른 나피온 함량에서 최적의 삼상계면이 형성되는 것으로 판단된다.

대면적 분리판의 운전 환경 불균일성을 고려한 MEA 성능최적화 방법 (Optimization Method for MEA Performance Considering the Non-Uniformity of Operating Condition in a Large-area Bipolar Plate)

  • 김성민;손영준;우승희;박석희;정남기;임성대
    • 신재생에너지
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    • 제17권2호
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    • pp.50-58
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    • 2021
  • We proposed an MEA development methodology that accurately measures intrinsic MEA performance while considering the uneven reaction environments formed inside a large-area BP. To facilitate measurement of the inherent MEA performance, we miniaturized the active area of the MEA to 3 cm2, and prepared two MEAs with different ionomer contents of 0.65 and 0.80 (I/C). By simulating the operating conditions of a 100 cm2 BP at the inlet (I), center (C), and outlet (O), the oxygen concentration and relative humidity were determined to be 20.7, 13.8, 11.7%, and 50, 66.1, and 70.1% respectively. We measured the performance and electrochemical analysis of the prepared MEAs under the three simulated conditions. Based on the results of statistical analysis of the evaluated MEA performance data, I/C 0.65 MEA had a higher average performance and lower performance deviation than I/C 0.80 MEA. Hence, it can be concluded that an I/C 0.65 MEA is a more effective MEA for large-area BP. Based on the above research process, we confirmed the effectiveness of the proposed MEA development methodology.

$TiO_2$ 촉매를 첨가한 자가 가습 연료전지용 MEA의 제조 (Preparation of MEA with $TiO_2$ catalysts for Self-humidifying PEMFC)

  • 변정연;이용진;주민철;김화용
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2008년도 춘계학술대회 논문집
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    • pp.568-571
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    • 2008
  • A novel self-humidifying composite membrane for the proton exchange membrane fuel cell (PEMFC) at low humidity condition was developed. The Pt/$TiO_2$ catalyst particles were synthesized via supercritical impregnation methods. Pt precursor was dissolved in supercritical carbon dioxide and impregnated onto $TiO_2$ particles. Pt precursors were platinum(II) acetylacetonate, Dimethyl(1,5-cyclooctadiene) platinum(II) and we controlled the ratio of Pt to $TiO_2$. The impregnated Pt precursor was converted to $TiO_2$ supported Pt nanoparticle under various reducing conditions. Pt/$TiO_2$ catalyst particles were dispersed uniformly into the Nafion solution, and then Pt/$TiO_2$/Nafion composite membrane was prepared using solution-cast method. The self-humidifying composite membrane could minimize membrane conductivity loss under dry conditions due to the presence of catalyst and hydrophilic Pt/$TiO_2$ particles. To optimize the performance of MEA, amount of ionomer loading was controlled. And mixed catalysts were used. The cell performance of MEA was obviously improved under dry conditions at $65^{\circ}C$.

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