• 제목/요약/키워드: Intermediate solid oxide fuel cells

검색결과 41건 처리시간 0.032초

연료극 지지체식 평관형 고체산화물 연료전지 단위 번들의 제조 및 성능 (Fabrication and Performance of Anode-Supported Flat Tubular Solid Oxide Fuel Cell Unit Bundle)

  • 임탁형;김관영;박재량;이승복;신동열;송락현
    • 전기화학회지
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    • 제10권4호
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    • pp.283-287
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    • 2007
  • 한국에너지기술연구원에서는 중온 ($700{\sim}800^{\circ}C$) 작동용 연료극 지지체 평관형 SOFC 스택을 구성하는 단위 번들을 개발했다. 연료극 지지체 평관형 셀은 Ni/YSZ 서밋 연료극 지지체 튜브, 8몰% $Y_2O_3$ stabilized $ZrO_2$ (YSZ) 전해질, $LaSrMnO_3$ (LSM)과 LSM-YSZ composite 및 $LaSrCoFeO_3(LSCF)$로 구성된 다중층 공기극으로 구성됐다. 제조된 연료극지지체 평관형 셀은 유도 브레이징 법에 의해 페리틱 (ferritic) 금속 캡에 접합됐고, 공기극의 전류집전을 위해 공기극 외부에 Ag 선 및 $La_{0.6}Sr_{0.4}CoO_3(LSCo)$ paste를 이용했으며, 연료극의 전류집전은 Ni felt, wire, 그리고 paste를 이용했다. 단위 번들을 만들기 위한 연료극 지지체 평관형 셀의 반응 면적은 셀 당 $90\;cm^2$ 이었으며, 2개의 셀이 병렬로 연결되어 1개의 단위 번들이 됐고, 총 12개의 단위 번들이 직렬로 연결되어 스택을 구성한다. 공기 및 3%의 가습된 수소를 산화제 및 연료로 사용한 단위 번들의 운전 결과 최대 성능은 $800^{\circ}C$에서 $0.39\;W/cm^2$의 출력이 나타났다. 본 연구를 통해 연료극 지지체 평관형 SOFC 셀의 기본 기술과 KIER 만의 독특한 연료극 지지체 평관형 SOFC 스택을 구성하는 단위 번들의 개념을 확립할 수 있었다.

연료극 지지체식 고체산화물 연료전지용 고성능 공기극 제조 및 특성 연구 (Preparation and Characteristics of High Performance Cathode for Anode-Supported Solid Oxide Fuel Cell)

  • 송락현
    • 전기화학회지
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    • 제8권2호
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    • pp.88-93
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    • 2005
  • 고체산화물 연료전지의 작동온도를 낮추고 셀의 출력 밀도를 향상시키기 위해 연료극 지지체식 셀을 제조하고 공기극의 구조를 개선시켜 그 특성을 조사 분석하였다. 셀 제조는 습식법에 의해 이루어졌으며, 제조된 연료극 지지체상에 전해질을 코팅하고 최종적으로 공기극을 코팅하였다. 제조된 셀은 $8mol\%\;V_2O_3$로 안정화된 $ZrO_2(YSZ)$ 전해질 층 및 Ni/YSZ 연료극 지지체로 이루어졌으며, 공기극은 $(La_{0.85}Sr_{0.15})_{0.9}MnO_{3-x}(LSM),\;LSM/YSZ(LY)$ 복합체, $La_{0.6}Sr_{0.4}Co_{0.2}Fe_{0.8}O_3{LSCF)$를 두층 또는 3층으로 두께를 변화시키면서 코팅하였다 임피던스로 전기화학적 특성을 조사하였으며, $3\%$수분을 함유한 수소와 공기로 $800^{\circ}C$ 이하에서 단전지의 성능을 평가하였다 작동온도 $800^{\circ}C$에서, $LY\;9{\mu}m/LSM\;9{\mu}m/LSCF\;17{\mu}m$의 다층이 코팅된 전지가 $590mW/cm^2$로 가장 좋은 성능을 나타냈으며, $0.244{\Omega}cm^2$로 가장 작은 분극저항을 가졌다. 측정된 임피던스 결과, 공기극의 분극저항이 3층 코팅된 셀의 경우 가장 작게 나타났음을 확인하였으며, 이것은 LY복합전극에 의한 전극 계면 저항 감소뿐 만 아니라 LSCF에 의한 공기극의 산소환원 반응의 전하이동 저항이 감소하였기 때문인 것으로 해석된다.

중온형 고체산화물 연료전지BixCel-xO2-x/2 전해질의 제조 및 특성평가 (Fabrication and Characterization of BixCel-xO2-x/2 Electrolytes for IT-SOFC)

  • 한주형;이인성;이덕열
    • 한국세라믹학회지
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    • 제42권12호
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    • pp.808-815
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    • 2005
  • [ $Bi_xCe_{l-x}O_{2-x/2}$ ](BD C : Bismuth Doped Ceria) powders with x = 0.1, 0.2, and 0.3 were synthesized using the Glycine Nitrate Process (GNP). They were then calcined at $500^{\circ}C$ for 2 hand sintered in a pellet or rod form at 900, 1000 or $1100^{\circ}C$ for 4 h for characterization as the alternative electrolyte material for intermediate temperature solid oxide fuel cells. The BDC powder consisted of a single phase of $CeO_2-Bi_2O_3$ solid solution in the as-synthesized state as well as in the as-calcined state with a mean powder size of 4.5nm in the former state and 6.5 - 10.1nm in the latter. On the contrary, the second phase of $\alpha-Bi_2O_3$ was observed to have been formed in the sinter with its amount increasing roughly with increasing temperature or $Bi_2O_3$ content. The BOC powder was superior in sinterability to other alternative electrolyte materials such as GDC, ScSZ, and LSGM with the minimum sintering temperature for a relative density of $95\%$ or larger as low as $1100^{\circ}C$. The ionic conductivity of BOC increased with $Bi_2O_3$ content and the maximum value of 0.119 S/cm was obtained at $800^{\circ}C$ for $Bi_{0.3}Ce_{0.7}O_{1.85}$.

Gd-Doped CeO2 분말의 마이크로파 소결 (Microwave Sintering of Gd-Doped CeO2 Powder)

  • 김영균;김석범
    • 한국세라믹학회지
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    • 제44권3호
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    • pp.182-187
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    • 2007
  • 10 mol% $Gd_{2}O_{3}-CeO_{2}$ powder was sintered by microwave in a 2.45 GHz multimode cavity to develop a dense electrolyte layer for intermediate temperature solid oxide fuel cells (IT-SOFCs). Samples were sintered from $1100^{\circ}C$ upto $1500^{\circ}C$ by $50^{\circ}C$ difference and kept for 10 min and 30 min at the maximum temperature respectively. Theoretical density of the sample sintered at $1200^{\circ}C$ for 10 min was 95.4% and increased gradually upto 99% in the sample sintered at $1500^{\circ}C$ for 30 min. All of sintered samples showed very fine microstructures and the maximum average grain size of the sintered sample at $1500^{\circ}C$ for 30 min was $(0.87{\pm}0.42){\mu}m$. Ionic conductvity of the samples were measured by DC 4 probe method.

K2NiF4 type 층상 페롭스카이트 구조 La(Ca)2Ni(Cu)O4-δ의 SOFC 양극 특성 및 결정구조 평가 (Structural and electrochemical characterization of K2NiF4 type layered perovskite as cathode for SOFCs)

  • 명재하;홍연우;이미재;전대우;이영진;황종희;신태호;백종후
    • 한국결정성장학회지
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    • 제25권3호
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    • pp.116-120
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    • 2015
  • 혼합이온 전도체인 $K_2NiF_4$-type 산화물인 $La(Ca)_2Ni(Cu)O_{4+{\delta}}$ 분말을 합성하여 결정구조 분석과 분말의 나노구조화에 따른 고체산화물 연료전지의 양극 성능을 비교 평가하였다. 이온 반경이 큰 Cu가 Ni 자리에 치환되어 Ni-O 팔면체 구조에서 c 축 방향으로 결정구조가 팽창하였으며, Ni-Cu의 Jahn-Teller 뒤틀림으로 산소이온 산화 환원 반응과 이온 전도도 특성에 영향을 주었다. 특히 나노구조의 $La(Ca)_2Ni(Cu)O_{4+{\delta}}$ 분말의 경우 표면 촉매성능이 향상되어 단위 전지 성능 향상 결과를 얻을 수 있었다. Ni-YSZ 음극 지지체에 8YSZ 전해질을 dip-coating한 후 $La(Ca)_2Ni(Cu)O_{4+{\delta}}$ 분말을 양극으로 도포하여 얻은 SOFC 단위성능 측정 결과 $800^{\circ}C$에서 $1w/cm^2$의 최대 출력 값을 얻을 수 있었다.

중저온 SOFC용 Ba0.5Sr0.5Co0.8Fe0.2O3−δ (BSCF)/Ce0.9Gd0.1O2−δ (GDC) 및 La0.6Ba0.4Co0.2Fe0.8O3−δ (LBCF)/Ce0.9Gd0.1O2−δ (GDC) 복합체 양극 제조 (Fabrication Ba0.5Sr0.5Co0.8Fe0.2O3−δ (BSCF)/Ce0.9Gd0.1O2−δ (GDC) and La0.6Ba0.4Co0.2Fe0.8O3−δ (LBCF)/Ce0.9Gd0.1O2−δ (GDC) Composite Cathodes for Intermediate Temperature Solid Oxide Fuel Cells)

  • 이승훈;윤종설;차영철;이준;황해진;문지웅
    • 한국세라믹학회지
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    • 제44권12호
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    • pp.740-746
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    • 2007
  • The potential candidates for IT-SOFCs cathode materials, $Ba_{0.5}Sr_{0.5}Co_{0.8}Fe_{0.2}O_{3-{\delta}}$ (BSCF) and $La_{0.6}Ba_{0.4}Co_{0.2}Fe_{0.8}O_{3-{\delta}}$ (LBCF) powders, were synthesized by a EDTA-citrate combined method from $Sr(NO_3)_2$, $Ba(NO_3)_2$, $La(NO_3)_3{\cdot}6H_2O$, $Co(NO_3)_2{\cdot}6H_2O$, $Fe(NO_3)_3{\cdot}9H_2O$, citric acid and $EDTA-NH_3$. The cathode performance of symmetrical electrochemical cells consisting of BSCF-GDC or LBCF-GDC composite electrodes and a GDC electrolyte was investigated using by AC impedance spectroscopy at the temperature range of 500 to $700^{\circ}C$. It was found that a single phase perovskite could be successfully synthesized when the precursor is heated at $850^{\circ}C$ for 2 h. Due to thermal expansion mismatch between BSCF and GDC, the composite cathodes with lower GDC content than 45 wt% were peeled off from the GDC electrolyte and their electrode polarization resistance was estimated to be high. The thermal expansion coefficient of BSCF-GDC composites was decreased with increasing the GDC content and the electrode peeling off did not occur in BSCF-45 and 55 wt% GDC composites. BSCF-45 wt% GDC composite electrode showed the lowest area specific resistances (ASR) of 0.15 and $0.04{\Omega}{\cdot}cm^2$ at 600 and $700^{\circ}C$, respectively. On the other hand, LBCF-GDC composite cathodes showed higher ASR than the BSCF-45 and 55 wt% GDC and their cathode performance were decreased with the GDC content.

A Facile Combustion Synthesis Route for Performance Enhancement of La0.6Sr0.4Co0.2Fe0.8O3-δ (LSCF6428) as a Robust Cathode Material for IT-SOFC

  • Yoo, Young-Sung;Namgung, Yeon;Bhardwaj, Aman;Song, Sun-Ju
    • 한국세라믹학회지
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    • 제56권5호
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    • pp.497-505
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    • 2019
  • Lanthanum-based transition metal cations containing perovskites have emerged as potential catalysts for the intermediate-temperature (600-800℃) oxygen reduction reaction (ORR). Here, we report a facile acetylacetone-assisted combustion route for the synthesis of nanostructured La0.6Sr0.4Co0.2Fe0.8O3-δ (LSCF6428) cathodes for intermediate-temperature solid-oxide fuel cells (IT-SOFCs). The as-prepared powder was analyzed by thermogravimetry analysis-differential scanning calorimetry. The powder calcined at 800℃ was characterized by X-ray diffraction, scanning electrode microscopy, energy dispersive X-ray spectroscopy, and Brunauer-Emmett-Teller surface area measurements. It was found that the porosity of the air electrode significantly increased by utilizing the nanostructured LSCF6428 instead of commercial powder. The performance of a single cell fabricated with the nanostructured LSCF6428 cathode increased by 112%, from 0.4 to 0.85 W cm-2, at 700℃. Electrochemical impedance spectroscopy showed a considerable reduction in the area-specific resistance and activation energy from 133.5 to 61.5 kJ/mol, resulting in enhanced electrocatalytic activity toward ORR and overall cell performance.

Effects of Sr Contents on Structural Change and Electrical Conductivity in Cu-doped LSM ($La_{1-x}Sr_xMn_{0.8}Cu_{0.2}O_{3{\pm}{\delta}}$)

  • 류지승;노태민;김진성;정철원;이희수
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2011년도 추계학술발표대회
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    • pp.33.1-33.1
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    • 2011
  • Strontium doped lanthanum manganite (LSM) with perovskite structure for SOFC cathode material shows high electrical conductivity and good chemical stability, whereas the electrical conductivity at intermediate temperature below $800^{\circ}C$ is not sufficient due to low oxygen ion conductivity. The approach to improve electrical conductivity is to make more oxygen vacancies by substituting alkaline earths (such as Ca, Sr and Ba) for La and/or a transition metal (such as Fe, Co and Cu) for Mn. Among various cathode materials, $LaSrMnCuO_3$ has recently been suggested as the potential cathode materials for solid oxide fuel cells (SOFCs). As for the Cu doping at the B-site, it has been reported that the valence change of Mn ions is occurred by substituting Cu ions and it leads to formation of oxygen vacancies. The electrical conductivity is also affected by doping element at the A-site and the co-doping effect between A-site and B-site should be described. In this study, the $La_{1-x}Sr_xMn_{0.8}Cu_{0.2}O_{3{\pm}{\delta}}$ ($0{\leq}x{\leq}0.4$) systems were synthesized by a combined EDTA-citrate complexing process. The crystal structure, morphology, thermal expansion and electrical conductivity with different Sr contents were studied and their co-doping effects were also investigated.

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소결 조제를 이용한 고체산화물 연료전지용 세리아 전해질의 저온소결 특성 연구 (A Study of Ceria on Low-temperature Sintering Using Sintering Aids for Solid Oxide Fuel Cells)

  • 오창훈;송광호;한종희;윤성필
    • 한국수소및신에너지학회논문집
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    • 제25권3호
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    • pp.280-288
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    • 2014
  • SDC (Samarium doped Ceria) electrolyte was developed for Intermediate temperature SOFC ($500^{\circ}C-800^{\circ}C$) which showed a good electrical conductivity. In this study, we used sintering aids to reduce the SDC sintering temperature down to $1000^{\circ}C$, especially which can help the SOFC scale-up. In order to reduce the SDC sintering temperature, $Li_2CO_3$ and $TiO_2$ were used as a sinering aids for decreasing sintering temperature. $Li_2CO_3$ and $TiO_2$ doped SDC sintered at $1000^{\circ}C$ showed 99% of the theoretical density and higher electrical conductivity than the pure SDC sintered at $1500^{\circ}C$. When measuring the OCV (Open circuit voltage) with the $Li_2CO_3$ and $TiO_2$ doped SDC electrolyte, however, the OCV values were lower than the theoretical OCV values which means that the modified SDC still had electronic conductivity.

Oxalate법으로 합성한 LSCF의 pH 변화에 따른 공기극 특성 (Properties of Synthesis LSCF Cathode with pH Control using Oxalate Method)

  • 이미재;최병현;김세기;지미정
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2007년도 추계학술대회 논문집
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    • pp.17-18
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    • 2007
  • Solid oxide fuel cells are clean, pollution-free technology for the electrochemical generation of electricity at high efficiency. Specially, the polarization resistance between electrolyte and electrode of SOFC unit cell is of importance, because it is desirable to develop SOFC operating at intermediate temperature below $800^{\circ}C$. The LSCF cathode prepared using modified oxalate method was investigated with different electrolyte. A precursor was prepared with oxalic acid, ethanol and $NH_4OH$ solution. The LSCF precursor was prepared at $80^{\circ}C$, and pH control was 2, 6, 8, 9 and 10. The precursor powder was calcined at $800^{\circ}C$, $1000^{\circ}C$ and $1200^{\circ}C$ for 4hrs. The crystal of LSCF powders show single phase at pH 2, 6, 8 and 9, and the average particle size was about $3{\mu}m$. The LSCF cathode with heat treatment at $1200^{\circ}C$ showed a plot of electric conductivity versus temperature. Unit cell prepared from the LSCF cathode, buffer layer between cathode and electrolyte and the LSGM, YSZ, ScSZ and CeSZ electrolyte. Also interface reaction between LSCF, buffer layer and electrolyte were measured by EPMA and the polarization resistance for unit cell with cycle measure using a Solatron 1260 analyzer.

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