• 제목/요약/키워드: Membrane electrode assembly(MEA)

검색결과 107건 처리시간 0.024초

Improved Performance of Microbial Fuel Cell Using Membrane-Electrode Assembly

  • PHAM THE HAl;JANG JAE KYUNG;MOON HYUN SOO;CHANG IN SEOP;KIM BYUNG HONG
    • Journal of Microbiology and Biotechnology
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    • 제15권2호
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    • pp.438-441
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    • 2005
  • A mediator-less microbial fuel cell (MFC) was used to determine the performance effects of a membrane­electrode assembly (MEA). The MFC with an MEA generated a higher current with an increased coulomb yield when compared to an MFC with a separate cathode. Less oxygen was diffused through an MEA than through a Nafion membrane. The MFC performance was improved with a buffer, although a high-strength buffer reduced the performance.

PEMFC에서 Pt-Co/C Cathode 촉매가 고분자막의 전기화학적 내구성에 미치는 영향 (Effect of Pt-Co/C Cathode Catalyst on Electrochemical Durability of Membrane in PEMFC)

  • 오소형;유동근;김명환;박지용;박권필
    • Korean Chemical Engineering Research
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    • 제61권2호
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    • pp.189-195
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    • 2023
  • PEMFC(고분자 전해질 막 연료전지) cathode 촉매로 Pt-Co/C가 내구성 향상 때문에 최근에 많이 사용되는 추세이다. 연료전지에서 전극과 전해질은 상호 간에 성능과 내구성 면에서 밀접하게 영향을 준다. Pt/C 전극 촉매에서 Pt-Co/C로 대체되었을 때 고분자 전해질막의 전기화학적 내구성에 미치는 영향에 대해서 연구하였다. PEMFC 고분자막의 전기화학적 가속 열화 과정에서 Pt-Co/C MEA(막전극접합체)의 내구성이 Pt/C MEA 내구성보다 높았다. FER (불소유출속도)와 수소투과도를 분석한 결과 Pt-Co/C MEA의 고분자막 열화속도가 Pt/C MEA보다 낮음을 보였다. OCV(개회로전압) holding 과정에서 Pt-Co/C 전극의 활성면적 감소속도가 Pt/C 전극보다 낮고, 고분자막에 석출되는 Pt 양도 Pt-Co/C MEA가 Pt/C MEA보다 작았다. 고분자막 내부의 Pt는 라디칼을 생성해서 고분자막을 열화시킴으로 Pt 석출 속도가 높은 Pt/C MEA의 고분자막 열화속도가 높게 나타났다. Pt-Co/C 촉매를 사용하면 전극 내구성도 향상되고, 고분자막에 석출되는 Pt양도 감소해서 고분자막의 전기화학적 내구성을 향상시켰다.

Bar-Coating 방법으로 제조한 직접메탄올 연료전지 MEA의 성능 (Performance of Membrane Electrode Assembly for DMFC Prepared by Bar-Coating Method)

  • 강세구;박영철;김상경;임성엽;정두환;장재혁;백동현
    • 전기화학회지
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    • 제11권1호
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    • pp.16-21
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    • 2008
  • 직접메탄올 연료전지 (DMFC)의 핵심 구성 요소 중에서 하나는 고분자 전해질막과 촉매층 (연료극과 공기극)으로 구성된 전해질/전극 접합체 (MEA)이다. 그중에서 촉매층은 브러싱법, 전시법, 스프레이 코팅법, 스크린 프린팅법과 같은 다양한 방법을 사용하여 carbon paper나 carbon cloth등과 같은 전극 지지체 위에 코팅한다. 그러나 이러한 촉매 코팅방법들은 전극 지지체 위에 촉매를 균일한 두께로 코팅하기 어렵고, 촉매의 손실이 많으며, 또한 코팅 시간이 많이 필요하다는 단점들이 있다. 본 연구에서는 DMFC용 MEA의 전극층을 바코팅 방법 (bar-coating method)을 사용하여 한 번에 원하는 양의 촉매가 코팅되도록 제조하였다. 이렇게 제조한 전극 촉매층 표면과 단면의 형태를 SEM을 사용하여 관찰하였다. 제조한 MEA의 성능과 저항은 단위전지와 임피던스 분석기를 사용하여 측정하였다.

Use of Inner Ionomer Solution in Preparing Membrane-Electrode Assembly (MEA) for Fuel Cells and Its Characterization

  • Seo, Seok-Jun;Woo, Jung-Je;Yun, Sung-Hyun;Park, Jin-Soo;Moon, Seung-Hyeon
    • Korean Membrane Journal
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    • 제10권1호
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    • pp.46-52
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    • 2008
  • Optimization of ionomer solution was conducted in order to improve the performance of MEAs in PEMPC. The interface between membrane and electrodes in MEAs is crucial region determining fuel cell performance as well as ORR reaction at cathode. Through the modification of Nafion ionomer content at the interface between membrane and electrodes, an optimal content was obtained with Nafion 115 membranes. Two times higher current density was obtained with the outer Nafion sprayed MEA compared with the non-sprayed one. In addition, the symmetrical impedance spectroscopy mode (SM) exhibited that the resistances of membrane area, proton hydration, and charge transfer decreased as the outer Nafion is sprayed. From the polarization curves and SM, the highest current density and the lowest resistance was obtained at the outer ionomer content of $0.15\;mg\;cm^{-2}$.

고분자 연료전지용 MEA 연속 코팅공정 개발 (Continuous Coating Process Development for PEFC Membrane Electrode Assembly)

  • 박석희;윤영기;김창수;이원용
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2006년도 춘계학술대회
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    • pp.110-112
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    • 2006
  • Membrane electrode assembly (MEA) for polymer electrolyte fuel cell (PEFC) are commonly prepared in the research laboratory by spraying, screen-printing and brushing catalyst slurry onto membrane or other support material like carbon paper or polyimide film in a batch style. These hand applications of the catalyst slurry are painstaking process with respect to precision of catalyst loading and reproducibility. It has been generally mentioned that the adoption of continuous process is very helpful to develop the reliable product. In the present work, we report the results of using continuous type coater with doctor-blade to coat catalyst slurry for preparing the MEA catalyst layers In a faster and highly reproducible fashion. We show that while expectedly faster than batch style, the machine coater requires the use of slurry of appropriate composition and a properly selected transfer decal material in order to achieve superior MEA plat lnw loading reproducibility. To make highly viscous catalyst slurry that is imperative for using coater, we use 40wt.% Nafion solution and minimize the content of organic solvent. And the choice of proper high surface area catalyst is important in the viewpoint of making well-dispersed slurry. After catalyst coating onto the support material, we transferred the catalyst layer to both sides of Nafion membrane by hot-pressing In this case, the degree of transfer was Influenced by hot-pressing condition including temperature, pressure, and time. To compare the transferring ability, we compared so many films and detaching papers. And among the support, polyethylene terephthalate(PET) film shows the prominent result.

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고분자 전해질막 연료전지의 활성화를 위한 CV 활성화법 (Application of CV Cycling to the Activation of the Polymer Electrolyte Membrane Fuel Cell)

  • 조기윤;정호영
    • 공업화학
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    • 제23권5호
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    • pp.445-449
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    • 2012
  • 고분자 전해질막 연료전지의 대량 생산을 위하여 막-전극 접합체(MEA) 활성화 방법의 개발이 중요한 현안이다. 현재 개발된 MEA활성화 방법은 시간이 많이 소요됨으로 인해 수소의 사용량 또한 증가하여 연료전지의 상용화에 큰 걸림돌이 되고 있다. 통상적인 활성화 방법은 활성화 원리를 주로 전해질 수화 관점에서 이해하였다. 반면, 본 논문에서 제안된 순환전압전류(cyclic voltammetry, CV) 활성화 방법은 전해질 및 촉매적 관점에서 별도로 분리하여 이해하였다. 따라서 전해질 관점에서는 상대 습도 100%인 가습된 질소를 공급하여 전극 및 막의 전해질을 수화시키는 과정으로 구성되고, 촉매적 관점에서는 CV 사이클을 수행하여 백금 촉매에 흡착되어 있는 불필요한 오염물질, 또는 산화피막을 제거하는 과정으로 수행된다. CV 활성화법은 2.5 h 내에 활성화가 종료되어 활성화 시간을 크게 단축시킬 수 있을 뿐만 아니라, 수소 사용량도 기존 활성화 방법에 비하여 1/4 이하로 감소시킬 수 있어서 효과적인 연료전지 활성화 방법으로 제안하고자 한다.

CNT 및 CNF를 이용하여 제조된 전극 촉매 및 막 전극 접합체의 특성 (The Characteristic of Prepared Electrode Catalyst and MEA using CNF and CNT)

  • 임재욱;최대규;류호진
    • 마이크로전자및패키징학회지
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    • 제11권1호
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    • pp.59-64
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    • 2004
  • 고분자 전해질 연료전지의 성능은 촉매 지지 물질의 특성에 의존한다. 본 연구에서는 백금 촉매의 지지체로서 CNF(carbon nanofibre)와 CNT(carbon nanotube)를 사용하였다. CNF와 CNT는 기상화학증착법과 메카노케미컬 공정에 의해 처리된 촉매를 이용하여 합성되었다. 백금은 고분자 전해질 연료전지의 적용을 위하여 CNF와 CNT로 지지되었다. 그 결과, 65 nm의 직경을 가지는 twisted CNF로 준비된 MEA가 가장 우수한 I-V 특성을 나타내는 것이 확인되었다.

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스크린 프린팅법을 이용하여 제조된 고분자 전해질 연료전지에서 MEA(조합 막 전극)의 특성 (Characteristics of Fabricated MEA(Membrane Electrode Assembly) on Polymer Electrolyte Membrane Fuel Cell Made by the Screen Printing Method)

  • 임재욱;최대규;류호진
    • 반도체디스플레이기술학회지
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    • 제2권4호
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    • pp.27-30
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    • 2003
  • The effect of fabrication method of catalytic layer on electrode performance has been investigated. Brush, spray gun and screen printer were used as fabrication tool and catalytic layers were formed by several methods in screen printing. Direct screen printing on polymer membrane, screen printing on carbon paper, and their combined method were applied. In the electrode fabricated by the screen printing method, Pt loading of Pt/C catalysts could be cut down to 50%, compared with results by the brushing and spraying methods. The best result of electrode was obtained as 0.6 V, at 1 A/$\textrm{cm}^2$ when catalytic layer was formed by the combined way.

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MEA 제조 방법에 따른 상대습도 변화가 PEMFC 내구성에 미치는 영향 (Effect of various MEA fabrication methods on the PEMFC durability testing at high and low humidity conditions)

  • 김근호
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2010년도 추계학술대회 초록집
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    • pp.86.2-86.2
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    • 2010
  • In order to improve polymer electrolyte membrane fuel cell (PEMFC) durability, the durability of membrane electrode assemblies (MEA), in which the electrochemical reactions actually occur, is one of the vital issues. Many articles have dealt with catalyst layer degradation of the durability-related factors on MEAs in relation to loss of catalyst surface area caused by agglomeration, dissolution, migration, formation of metal complexes and oxides, and/or instability of the carbon support. Degradation of catalyst layer during long-term operation includes cracking or delamination of the layer which result either from change in the catalyst microstructure or loss of electronic or ionic contact with the active surface, can result in apparent activity loss in the catalyst layer. Membrane degradation of the durability-related factors on MEAs can be caused by mechanical or thermal stress resulting in formation of pinholes and tears and/or by chemical attack of hydrogen peroxide radicals formed during the electrochemical reactions. All of these effects, the mechanical damage of membrane and degradation of catalyst layers are more facilitated by uneven stress or improper MEA fabrication process. In order to improve the PEMFC durability, therefore, it is most important to minimize the uneven stress or improper MEA fabrication process in the course of the fabrication of MEA. We analyzed the effects of the MEA fabrication condition on the PEMFC durability with MEA produced using CCM (catalyst coated membrane) method. This paper also investigated the effects of MEA fabrication condition on the PEMFC durability by adding additional treatment process, hot pressing and pressing, on the MEA produced using CCM method.

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그린수소 생산을 위한 고성능 고분자 전해질막 전해조 개발 연구 (Developing High-Performance Polymer Electrolyte Membrane Electrolytic Cell for Green Hydrogen Production)

  • Choi, Baeck Beom;Jo, Jae Hyeon;Lee, Yae Rin;Kim, Jungsuk;Lee, Taehee;Jeon, Sang-Yun;Yoo, Young-Sung
    • KEPCO Journal on Electric Power and Energy
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    • 제7권1호
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    • pp.137-143
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    • 2021
  • As an electrochemical water electrolysis for green hydrogen production, both polymer electrolyte membrane (PEM) and alkaline electrolyte are being developed extensively in various countries. The PEM electrolyzer with high current density (above 2 A/cm2) has the advantage of being able to design a simple structure. Also, it is known that it has high response to electrical output fluctuations. However, the cost problem of major components is the most important issue that a PEM electrolyzer must overcome. Instantly, there are platinum group metal (PGM)-based electrocatalysts, fluorine-based polyfluoro sulfuric acid (PFSA) membrane, Ti felt (porous transport layer, PTL) and so on. Another challenging issue is productivity. A securing outstanding productivity brings price benefits of the electrolytic cells. From this point of view, we conducted basic studies on manufacturing electrode and membrane electrode assembly (MEA) for PEM electrolyzer production.