• Title/Summary/Keyword: Ni/YSZ anode

Search Result 101, Processing Time 0.041 seconds

A Study on the Improvement of Strength in NiO-YSZ Porous Anode Material for Solid Oxide Fuel Cell (SOFC용 다공성 NiO-YSZ 음극소재의 강도향상에 관한 연구)

  • 이기성;서두원;유지행;우상국
    • Journal of the Korean Ceramic Society
    • /
    • v.40 no.3
    • /
    • pp.241-248
    • /
    • 2003
  • We controlled the amount of Y$_2$O$_3$additives, 8 mol% and 10 mol%, and the type of carbon pore former, activated carbon and carbon black, to improve the strength of porous NiO-YSZ anode materials for solid oxide fuel ceil. The 3-point flexural strength, porosity and electrical conductivity were evaluated. As a result, the strength of anode materials with the addition of carbon black was markedly improved. The strength of NiO-10 mol%YSZ sintered at relatively higher temperature was higher than that of NiO-8 mol%YSZ materials. The electrical conductivity of NiO-10 mol%YSZ with carbon black was evaluated as much as 10$^2$∼10$^3$S/cm at 700$^{\circ}C$∼1000$^{\circ}C$ in reducing atmosphere.

Anode-supported Solid Oxide Fuel Cells Prepared by Spin-coating (Spin-coating 공정에 의해 제조된 음극 지지형 고체산화물 연료전지)

  • Yu, Ji-Haeng;Lee, Hee-Lak;Woo, Sang-Kuk
    • Journal of the Korean Ceramic Society
    • /
    • v.44 no.12
    • /
    • pp.733-739
    • /
    • 2007
  • NiO-YSZ anode-supported single cell was prepared by spin-coating YSZ and LSM slurries as electrolyte and cathode, respectively. Dense YSZ electrolyte film was successfully prepared on the porous NiO-YSZ anode substrate by tuning pre-sintering temperature of NiO-YSZ and co-firing temperature. The thickness of YSZ film was controlled by the solid content of slurry and coating cycles. The experimental conditions affecting on the thickness of YSZ film was discussed. Single cells with the active electrode area ${\sim}0.8\;cm^2$ were prepared by spin-coating the cathode layers of LSM-YSZ mixture and LSM consequently as well. The effects of the pre-sintering temperature and thus the microstructure of NiO-YSZ substrate on the current-voltage characteristics of co-fired cell were investigated.

Optimization of anode and electrolyte microstructure for Solid Oxide Fuel Cells (고체산화물 연료전지 연료극 및 전해질 미세구조 최적화)

  • Noh, Jong Hyeok;Myung, Jae-ha
    • Korean Chemical Engineering Research
    • /
    • v.57 no.4
    • /
    • pp.525-530
    • /
    • 2019
  • The performance and stability of solid oxide fuel cells (SOFCs) depend on the microstructure of the electrode and electrolyte. In anode, porosity and pore distribution affect the active site and fuel gas transfer. In an electrolyte, density and thickness determine the ohmic resistance. To optimizing these conditions, using costly method cannot be a suitable research plan for aiming at commercialization. To solve these drawbacks, we made high performance unit cells with low cost and highly efficient ceramic processes. We selected the NiO-YSZ cermet that is a commercial anode material and used facile methods like die pressing and dip coating process. The porosity of anode was controlled by the amount of carbon black (CB) pore former from 10 wt% to 20 wt% and final sintering temperature from $1350^{\circ}C$ to $1450^{\circ}C$. To achieve a dense thin film electrolyte, the thickness and microstructure of electrolyte were controlled by changing the YSZ loading (vol%) of the slurry from 1 vol% to 5 vol. From results, we achieved the 40% porosity that is well known as an optimum value in Ni-YSZ anode, by adding 15wt% of CB and sintering at $1350^{\circ}C$. YSZ electrolyte thickness was controllable from $2{\mu}m$ to $28{\mu}m$ and dense microstructure is formed at 3vol% of YSZ loading via dip coating process. Finally, a unit cell composed of Ni-YSZ anode with 40% porosity, YSZ electrolyte with a $22{\mu}m$ thickness and LSM-YSZ cathode had a maximum power density of $1.426Wcm^{-2}$ at $800^{\circ}C$.

Performance of Single Cells with Anode Functional Layer for SOFC

  • Choi, Jin-Hyeok;Lee, Tae-Hee;Park, Tae-Sung;Yoo, Young-Sung
    • New & Renewable Energy
    • /
    • v.5 no.1
    • /
    • pp.11-17
    • /
    • 2009
  • To improve the performance of the anode-supported Solid Oxide Fuel Cell (SOFC) which can be operated at an intermediate temperature, the functional layer (FL) is introduced on a anode substrate. And the scandia-stabilized zirconia (ScSZ) and samaria-doped ceria (SDC) which have higher ionic conductivity and better chemical stability than yttria-stabilized zirconia (YSZ) are used as material for the anode FL with the Ni, The fabrication process of anode-supported single cell with the anode FL was established and the power density of those was evaluated. As a result, the sample with anode FL (Ni-YSZ) has higher power density than normal cell. The single cell which was composed of the FL (Ni-YSZ) and electrolyte (YSZ) showed about $550mW/cm^2$ of the maximum power density at $650^{\circ}C$ and $1430mW/cm^2$ at $750^{\circ}C$ respectively, In case of the single cell using the ScSZ and SDC as anode FL, the performance of samples decreased rapidly and those showed unstable voltage during long-term test. In case of using methane as a fuel, the cell performance with each FL decreased comparing with $H_2$ fuel. In the region of a high current density, there are large concentration polarizations.

  • PDF

Synthesis of Ultrafine NiO/YSZ Composite Powder for Anode Material of Solid Oxide Fuel Cells (고체산화물 연료전지의 양극재료용 초미분체 NiO/YSZ 복합체 재료합성 연구)

  • 최창주;김태성;황종선;김선재
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
    • /
    • 1999.05a
    • /
    • pp.422-425
    • /
    • 1999
  • Ultrafine NiO/YSZ (Yttria-Stabilized Zirconic) composite powders were prepared by using a glycine nitrate process (GNP) for anode material of solid oxide fuel cells. The specific surface areas of synthesized NiO/YSZ composite powders were examined with controlling pH of a precursor solution and the content of glycine. The binding of glycine with metal ions occurring in the precursor solution was analyzed by using FTIR. The characteristics of synthesized composite powders were examined with X-ray diffractometer, a BET method with $N_2$ absorption, scanning and transmission electron microscopies. Strongly acid precursor solution increased the specific surface area of the synthesized composite powders. This is suggested to be caused by the increased binding of metal ions and glycine under a strong acid solution of pH=0.5 that lets glycine consist of mainly the amine group of NH$_3$$^{+}$ After sintering and reducing treatment of NiO/YSZ composite powders synthesized by GNP, the Ni/YSZ pellet showed ideal microstructure very fine Ni Particles of 3-5${\mu}{\textrm}{m}$ were distributed uniformly and fine pores around Ni metal particles were formed, thus, leading to an increase of the triple phase boundary among gas, Ni and YSZ.Z.

  • PDF

Study on anode in SOFC (SOFC 연료극의 전극특성)

  • Eom, S.W.;Kim, G.Y.;Moon, S.I.;Lim, H.C.;Lee, C.W.
    • Proceedings of the KIEE Conference
    • /
    • 1995.11a
    • /
    • pp.404-405
    • /
    • 1995
  • Solid Oxide Fuel Cell has advantage of high utility because of having high operation temperature. In case of anode, Ni and YSZ being widly used as anode start materials. But Ni can be sintered during operation because that its operation temperature is very high, so it cause to lower the cell performance. It is very important to control the ratio of Ni to YSZ. In this paper, we studed on characterization of anode by controlling the Ni-YSZ contents.

  • PDF

Correlation between the Microstructure and the Electrical Conductivity of SOFC Anode, Ni-YSZ : II. Temporal Variation (SOFC 음극용 Ni-YSZ 복합체의 미세구조와 전기적 물성간의 상관관계: II. 경시변화)

  • Moon, Hwan;Lee, Hae-Weon;Lee, Jong-Ho;Yoon, Ki-Hyun
    • Journal of the Korean Ceramic Society
    • /
    • v.37 no.12
    • /
    • pp.1140-1145
    • /
    • 2000
  • Ni의 함량이 서로 다른 Ni-YSZ 복합체를 100$0^{\circ}C$ 환원 분위기 하에서 열처리하며 시간에 따른 미세구조의 변화를 관찰하였다. Quantitative microscopy 이론을 응용한 화상분석 결과 Ni-YSZ 복합체의 미세구조는 열처리시 나타나는 Ni상의 미세구조 변화에 가장 큰 영향을 받고 있었다. 특히 Ni의 양이 많은 조성에서는 Ni 상간의 접촉이 많아 고상반응에 의한 미세구조의 변화가 심하였는데 이로 인해 복합체 미세구조의 안정화가 느리게 진행되었다. Ni-YSZ 복합체의 전기 전도도 역시 Ni상의 미세구조 변화에 큰 영향을 받았는데 복합체 전체 미세구조의 경시변화와는 달리 Ni상의 많은 조성보다는 Ni상의 percolation이 일어나는 조성 부근에서 더 큰 영향을 받았다. 이로 인해 Ni-YSZ의 전기 전도도는 Ni의 percolation threshold 부근 조성에서 안정화되는데 더 많은 시간을 요하였다.

  • PDF

Characteristics of Anode Electrode According to Ni Content for Solid Oxide Fuel Cell (고체전해질형 연료전지의 Ni 함량에 따른 연료극 특성)

  • 김귀열;엄승욱;문성인
    • Electrical & Electronic Materials
    • /
    • v.10 no.6
    • /
    • pp.528-532
    • /
    • 1997
  • The research and development for the solid oxide fuel cell have been promoted rapidly and extensively in recent years, because of their high efficiency and future potential. Therefore this paper describes the manufacturing method and characteristics of anode electrode for SOFC, by the way, Ni-YSZ materials are used as anode of SOFC widely. So in this experiments, we investigated the optimum content of Ni, by testing expansion coefficient, impedance characteristics, overvoltage. As a result, the performance of Ni-YSZ anode(40vol%) was better excellent than the others.

  • PDF

Effect of Microstructure on Mechanical and Electrical Properties in Ni-YSZ of Anode Supported SOFC (연료극 지지체식 고체산화물 연료전지의 기계적 및 전기적 특성에 미치는 Ni-YSZ의 미세구조의 영향)

  • Choi, Mi-Hwa;Choi, Jin-Hyeok;Lee, Tae-Hee;Yoo, Young-Sung
    • Journal of Hydrogen and New Energy
    • /
    • v.22 no.5
    • /
    • pp.592-598
    • /
    • 2011
  • Electrode of solid oxide fuel cell must have sufficient porosity to allow gas transport to the interface with electrolyte effectively but high porosity has a negative impact on structural stability in electrode support. Thus, the upper limit of porosity is based on consideration of mechanical strength of electrode. In this study, the effect of microstructure of Ni-YSZ anode supported SOFC on the mechanical and electrical property was investigated. LSCF composite cathode and 8YSZ electrolyte were used. The porosity of the anode was modified by the amount of graphite powder and added graphite contents were 24, 18, 12 vol%, respectively. The higher the porosity, the better the electrical performance, $P_{max}$. While the flexural strength decreased with increasing the amount of graphite. But the rate of increase in electrical performance and the rate of decrease in mechanical strength were not directly proportional to amount of graphite. The optimum graphite content incorporating both electrical and mechanical performance was 18 vol%.