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Improving LSM Cathode Performance Using (Cu,Mn)_3O_4 Spinel Coated UNS430 Ferritic Stainless Steel SOFC Interconnects

机译:使用(Cu,Mn)_3O_4尖晶石涂层UNS430铁素体不锈钢SOFC互连改善LSM阴极性能

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Maintaining the power output of planar SOFCs cathodes over thousands of hours of operation in air at 700 or even 800 °C, requires that the contact resistance of the interconnect remain relatively low over the operation life of the SOFC, and that the generation of volatile Cr species is minimized. This work focuses on assessing the ability of the (Cu,Mn)_3O_4 spinel oxide coating to limit Cr_2O_3 film growth and chromia loss from ferritic 430 stainless steel (UNS430). Several orders of magnitude more conductive than the native Cr_2O_3 oxide film, this material and other spinel coatings have been applied to UNS430 samples using a low cost fabrication method that is amenable to many interconnect geometries. Coated UNS430 samples were tested under simulated half-cell conditions via direct contact to a porous (La_(0.8)Sr_(0.2))_(0.98)MnO_3 (LSM) cathode supported on 8%YSZ in flowing dry air at 600 to 800°C. As compared to uncoated UNS430 contacts, spinel-coated interconnects greatly enhance the stability of the cathode when cathodically polarized over a 250+ hour period. WDX analyses show that these films prevent Cr transfer to the LSM-YSZ interface, but are susceptible to long-term loss of Cu.
机译:在700甚至800°C的空气中保持平面SOFCS阴极的功率输出,要求互连的接触电阻在SOFC的运营寿命中保持相对较低,并且挥发性CR的产生物种被最小化。这项工作侧重于评估(Cu,Mn)_3O_4尖晶石氧化物涂层的能力,以限制Ferrite 430不锈钢(UNS430)的Cr_2O_3膜生长和染色损失。多个数量级导电比天然Cr_2O_3氧化物膜,这种材料和其他尖晶石涂层已经应用于UNS430样品,使用低成本制造方法,其可允许许多互连几何形状。通过直接接触在模拟的半电池条件下通过直接接触到多孔(La_(0.8)Sr_(0.2))_(0.98)MnO_3(LSM)阴极在8%YSZ上以600至800°的流动空气中支撑的多孔(0.8)SR_(0.2))_(0.98)MnO_3(LSM)阴极进行测试。 C。与未涂覆的UNS430触点相比,尖晶石涂覆的互连大大提高了在250多个小时内的阴极偏振时阴极的稳定性。 WDX分析表明,这些薄膜防止CR转移到LSM-YSZ接口,但易于长期丧失Cu。

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