• 제목/요약/키워드: Fuel Electrode Catalyst

검색결과 166건 처리시간 0.024초

메탄 내부개질 반응을 통한 고체산화물 연료전지의 탄소침적 억제에 관한 연구 (A Study on the Suppression of Carbon Deposition in Solid Oxide Fuel Cells Through Methane Internal Reforming)

  • 강윤혁;임성광;유영성;박진우;배중면
    • 대한기계학회논문집B
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    • 제31권5호
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    • pp.473-481
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    • 2007
  • Compared to other types of fuel cells, SOFC has advantages like a wide output range and the direct use of hydrocarbon fuel without the process of external reforming. Particularly because the direct use of fuel without reforming reaction is closely linked to overall system efficiency, it is a very attractive advantage. We tried the operation with methane. However, although methane has a small number of carbons compared to other hydrocarbon fuels, our experiment found the deposition of carbon on the surface of the SOFC electrode. To overcome the problem, we tried the operation through activating internal reforming. The reason that internal reforming was possible was that SOFC runs at high temperature compared to other fuel cells and its electrode is made of Ni, which functions as a catalyst favorable for steam reforming.

Decrease in hydrogen crossover through membrane of polymer electrolyte membrane fuel cells at the initial stages of an acceleration stress test

  • Hwang, Byung Chan;Oh, So Hyeong;Lee, Moo Seok;Lee, Dong Hoon;Park, Kwon Pil
    • Korean Journal of Chemical Engineering
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    • 제35권11호
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    • pp.2290-2295
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    • 2018
  • An acceleration stress test (AST) was performed to evaluate the durability of a polymer membrane in a polymer electrolyte membrane fuel cell (PEMFC) for 500 hours. Previous studies have shown that hydrogen crossover measured by linear sweep voltammetry (LSV) increases when the polymer membrane deteriorates in the AST process. On the other hand, hydrogen crossover of the membrane often decreases in the early stages of the AST test. To investigate the cause of this phenomenon, we analyzed the MEA operated for 50 hours using the AST method (OCV, RH 30% and $90^{\circ}C$). Cyclic voltammetry and transmission electron showed that the electrochemical surface area (ECSA) decreased due to the growth of electrode catalyst particles and that the hydrogen crossover current density measured by LSV could be reduced. Fourier transform infrared spectroscopy and thermogravimetric/differential thermal analysis showed that -S-O-S- crosslinking occurred in the polymer after the 50 hour AST. Gas chromatography showed that the hydrogen permeability was decreased by -S-O-S- crosslinking. The reduction of the hydrogen crossover current density measured by LSV in the early stages of AST could be caused by both reduction of the electrochemical surface area of the electrode catalyst and -S-O-S- crosslinking.

인산형 연료전지용 다공성 박막의 표면 다공도에 관한 연구 (Study on the surface porosity of porous thin layer electrode for phosphoric acid fuel cell)

  • 김조웅;김영우;이주성
    • 한국표면공학회지
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    • 제24권3호
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    • pp.162-168
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    • 1991
  • Gas diffusion and electrolyte penetration in wetproofed gas diffusion electrodes were studied using layers of PTFE- bonded carbon. Minor variations in fabrication and testing procedures resulted in very large variations in catalyst layer wetting characteristics and permiability for reaction gas. By controlling the pore size of gas diffusion electrode carefully by varing the PTFE contents, baking temperature, baking time and ammonium bicarbonate as additive, the primary pore was decreased and the secondary pore was increased and so more reaction gas through the primary pore could be reacted at catalyst agglomertes in the secondary pore. And the cathode current density was increased to more than 400mA.$\textrm{cm}^2$ and Tafel slope value was decreased to lower than 110mA/decade.

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고분자전해질 연료전지의 전극 열화 과정에서 고분자막에 석출된 백금에 관한 연구 (Study on the Platinum Deposition in Membrane of Polymer Electrolyte Membrane Fuel Cell during Electrode Degradation Process)

  • 오소형;권혜진;유동근;박권필
    • Korean Chemical Engineering Research
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    • 제60권2호
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    • pp.202-207
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    • 2022
  • 고분자 전해질 연료전지(PEMFC)의 전극 열화에 대한 연구는 전극상에서 Pt의 입자 성장 및 활성면적 감소에 대한 연구가 대부분이다. 고분자막과 접해 있는 전극촉매 Pt의 열화는 고분자막 열화에 영향을 주는데, 이와 관련된 연구는 많지 않다. 본 연구에서는 전극촉매 열화 가속 시험 과정에서 열화된 Pt가 고분자막 내부에 석출되는 현상과 그 영향에 대해서 연구하였다. 백금 열화 속도를 가속화시키기 위해 전압 변화(0.6 V ↔ 0.9 V)를 30,000 사이클까지 반복했다. Cathode에 산소를 유입하면서 전압 변화 사이클을 반복했을 때 질소를 유입했을 때 보다 막 내부에 석출된 Pt의 양이 더 많았다. 전압 변화 사이클 횟수가 증가할수록 막 내부에 석출된 Pt의 양이 증가하였고, cathode에서 용해된 Pt가 anode 쪽으로 이동해 20,000 사이클에서는 막 내부에 전체적으로 균일한 분포를 보였다. 이와 같은 전극촉매 열화 가속 시험과정에서 고분자막의 수소투과 전류밀도는 거의 변하지 않아서, 석출된 Pt가 고분자막의 내구성에는 영향을 주지 않음을 확인하였다.

Glucose Oxidation on Gold-modified Copper Electrode

  • Lim, Ji-Eun;Ahn, Sang Hyun;Pyo, Sung Gyu;Son, Hyungbin;Jang, Jong Hyun;Kim, Soo-Kil
    • Bulletin of the Korean Chemical Society
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    • 제34권9호
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    • pp.2685-2690
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    • 2013
  • The activities of Au-modified Cu electrodes toward glucose oxidation are evaluated according to their fabrication conditions and physico-chemical properties. The Au-modified Cu electrodes are fabricated by the galvanic displacement of Au on a Cu substrate and the characteristics of the Au particles are controlled by adjusting the displacement time. From the glucose oxidation tests, it is found that the Au modified Cu has superior activity to the pure Au or Cu film, which is evidenced by the negative shift in the oxidation potential and enhanced current density during the electrochemical oxidation. Though the activity of the Au nanoparticles is a contributing factor, the enhanced activity of the Au-modified Cu electrode is due to the increased oxidation number of Cu through the electron transfer from Cu to more electronegative Au. The depletion of electron in Cu facilitates the oxidation of glucose. The stability of the Au-modified Cu electrode was also studied by chronoamperometry.

고분자 전해질 연료전지 성능에 미치는 MEA 가압제조 공정 조건의 영향 (Performance of Fuel Cell with PEMFC Fabricated under Different Pressure)

  • 이기성;심수만;김동민
    • 한국수소및신에너지학회논문집
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    • 제24권1호
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    • pp.70-75
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    • 2013
  • It has fabricated membrane electrode assemblies (MEA) for proton exchange membrane fuel cell by hot-pressing method. The hot-pressing was used for the fabrication of MEA which is composed of commercial platinum electrode on carbon paper. The performance of MEA was studied with different fabrication conditions of temperature, pressure and torque. As the temperature increased, the performance of MEA was increased. and started to decrease l after arrived at the maximum performance of MEA. This is related with good contact between electrode and polymer electrolyte membrane at high temperature and microstructural change at much higher temperature. Similarly, as the pressure increased, the performance of the MEA increased up to highest values and start to decrease. According to the our results, the maximal performance of the MEA was at the temperature of $140^{\circ}C$ and the pressure of $1.5{\times}10^3$ kPa. The optimal torque to assemble the single stack was 3.2 N m.

Effects of Polyamidoamine Dendrimers on the Catalytic Layers of a Membrane Electrode Assembly in Fuel Cells

  • Lee Jin Hwa;Won Jongok;Oh In Hwan;Ha Heung Yong;Cho Eun Ae;Kang Yong Soo
    • Macromolecular Research
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    • 제14권1호
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    • pp.101-106
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    • 2006
  • The transport of reactant gas, electrons and protons at the three phase interfaces in the catalytic layers of membrane electrode assemblies (MEAs) in proton exchange, membrane fuel cells (PEMFCs) must be optimized to provide efficient transport to and from the electrochemical reactions in the solid polymer electrolyte. The aim of reducing proton transport loss in the catalytic layer by increasing the volume of the conducting medium can be achieved by filling the voids in the layer with small-sized electrolytes, such as dendrimers. Generation 1.5 and 3.5 polyamidoamine (PAMAM) dendrimer electrolytes are well-controlled, nanometer-sized materials with many peripheral ionic exchange, -COOH groups and were used for this purpose in this study. The electrochemically active surface area of the deposited catalyst material was also investigated using cyclic voltammetry, and by analyzing the Pt-H oxidation peak. The performances of the fuel cells with added PAMAM dendrimers were found to be comparable to that of a fuel cell using MEA, although the Pt utilization was reduced by the adsorption of the dendrimers to the catalytic layer.

직접 개미산 연료전지의 연구동향 (R & D Trends on Direct Formic Acid Fuel Cells)

  • 권용재;한종희;김진수
    • 공업화학
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    • 제19권6호
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    • pp.583-591
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    • 2008
  • 최근 휴대용 전자기기 수요의 급증에 따라 기존에 사용되던 2차 전지를 대체할 수 있는 친환경 고효율 연료전지 개발의 필요성이 증대되었다. 이러한 목적으로 개미산을 연료로 이용하는 직접 개미산 연료전지가 부각되고 있다. 식품첨가물로 사용될 정도의 안정성, 전해질을 통과하는 연료의 최소화된 crossover, 큰 기전력 발생에 의한 반응활성 최대화 등이 개미산이 가지고 있는 고유의 장점들이며, 이와 더불어 반응 촉매 및 전지 디자인을 최적화 하려는 노력에 의해 직접 개미산 연료전지의 성능 및 안정성이 향상되고 있다. 이러한 개발을 통해 현재까지 약 $300mW/cm^2$ 이상의 전력밀도를 나타내는 전지 개발이 이루어졌다. 본 총설에서는 개미산 연료전지의 기본 구동 원리와 전지 구조에 대한 소개 및 직접 개미산 연료전지 성능 향상에 영향을 미치는 인자들인 연료극 촉매 및 전해질 개발, 최적화된 전지 구조 디자인 등의 개발 현황 및 앞으로 나아갈 방향에 대해 논의하고자 한다.

백금담지 촉매의 직접메탄올 연료전지 환원전극 적용 (Application of Pt/C (60 wt.%) on electrode catalyst layer of direct methanol fuel cell)

  • 조용훈;조윤환;박현서;정남기;성영은
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2007년도 춘계학술대회
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    • pp.188-190
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    • 2007
  • The MEA with the catalyst layer containing PtRu black and 60 wt. %Pt/C as their anode and cathode catalysts. For find to effect of carbon support, the MEA with platinum black for cathode catalyst was fabricated. The performance of the MEA with the catalyst layer containing (PtRu black:60 wt.% Pt/C) as their anode and cathode catalyst has shown competitively higher value than the performance of the MEA with the catalyst layer containing (PtRu black:Pt black) as their anode and cathode catalyst.

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Catalytic Effects of Barium Carbonate on the Anodic Performance of Solid Oxide Fuel Cells

  • Yoon, Sung-Eun;Ahn, Jae-Yeong;Park, Jong-Sung
    • 한국세라믹학회지
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    • 제52권5호
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    • pp.350-355
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    • 2015
  • To develop ceramic composite anodes of solid oxide fuel cells without metal catalysts, a small amount of barium carbonate was added to an $(La_{0.8}Sr_{0.2})(Cr_{0.5}Mn_{0.5})O_3(LSCM)$ - YSZ ceramic composite anode and its catalytic effects on the electrode performance were investigated. A barium precursor solution with citric acid was used to synthesize the barium carbonate during ignition, while a barium precursor solution without citric acid was used to create hydrated barium hydroxide. The addition of barium carbonate to the ceramic composite anode caused stable fuel cell performance at 1073 K; this performance was higher than that of a fuel cell with $CeO_2$ catalyst; however, the addition of hydrated barium hydroxide to the ceramic composite anode caused poor stability of the fuel cell performance.