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Synthesis and electrical properties of Co-doped Y0.08Sr0.92TiO3-δ as a potential SOFC anode

机译:作为电位SOFC阳极的共掺杂Y0.08SR0.92TiO3-δ的合成和电性能

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Strontium titanate with perovskite structure is one of potential candidates for alternative anodes for solid oxide fuel cells. Co-doped Y0.08Sr0.92TiO3-δwas synthesized via solid-state reaction. The effect of Co-doping on the electrical behavior of Y0.08Sr0.92TiO3-δ was investigated and a doping mechanism was proposed. Compared with Y0.08Sr0.92TiO3-δ, the electrical conductivities of Y0.08Sr0.92CoxTi1-xO3-δ decrease obviously with increasing Co-doping amount at 25-1000°C, while the ionic conductivities increase significantly at 500-1000°C. The addition of Co can increase the oxygen vacancy concentration and enlarge the saddle point critical radius rc both of them should be responsible for the remarkably enhanced ionic conductivity of Y0.08Sr0.92CoxTi1-xO3-δ. The decreased electronic conductivity of Y0.08Sr0.92CoxTi1-xO3-δ is ascribed to the lowered Ti3+concentration, caused by the substitution of Co3+. Co-doping increases the oxygen absorption temperature, and thus widens the operation temperature range of doped-SrTiO3.
机译:钛酸锶与钙钛矿结构是用于固体氧化物燃料电池的替代阳极的潜在候选者之一。通过固态反应合成共掺杂Y0.08SR0.92TiO3-ΔWas。研究了共掺杂对Y0.08SR0.92TiO3-δ的电能的影响,提出了一种掺杂机理。与Y0.08SR0.92TiO3-δ相比,Y0.08SR0.92COXTi1-XO3-δ的电导率明显降低,随着25-1000℃的共掺杂量增加,而离子电导率在500-1000℃下显着增加。加入CO可以增加氧气空位浓度并扩大鞍点临界半径RC,它们两者都应负责Y0.08SR0.92COXTI1-XO3-δ的显着增强的离子电导率。 Y0.08SR0.92COXTi1-XO3-δ的电子电导率降低归因于通过CO3 +的取代引起的降低的Ti3 +浓度。共掺杂增加氧吸收温度,从而加宽了掺杂-SRTIO3的操作温度范围。

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