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首页> 外文期刊>Advanced Functional Materials >Non-stoichiometry in Oxide Thin Films: A Chemical Capacitance Study of the Praseodymium-Cerium Oxide System
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Non-stoichiometry in Oxide Thin Films: A Chemical Capacitance Study of the Praseodymium-Cerium Oxide System

机译:氧化薄膜中的非化学计量::-氧化铈系统的化学电容研究

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While the properties of functional oxide thin films often depend strongly on their oxygen stoichiometry, there have been few ways to extract this information reliably and in situ. In this work, the derivation of the oxygen non-stoichiometry of dense Pr_0.7Ce_0.9Othin films from an analysis of chemical capacitance obtained by impedance spectroscopy is described. Measurements are performed on electrochemical cells of the form Pr_0.1Ce_0.9O_2-δ/ Y_0.16Zr_0.84O_1.92/Pr_0.1Ce_0.9O_2-δ over the temperature range of 450 to 800 °C and oxygen partial pressure range of 10_-5 to 1 atm O_2.With the aid of a defect equilibria model, approximations relate chemical capacitance directly to non-stoichiometry, without need for fitting parameters. The calculated non-stoichiometry allows extraction of the thermodynamic constants defining defect generation. General agreement of these constants with bulk values derived by thermogravimetric analysis is found, thereby confirming the suitability of this technique for measuring oxygen non-stoichiometry of thin oxide films. Potential sources of error observed in earlier chemical capacitance studies on perovskite structured oxide films are also discussed.
机译:尽管功能性氧化物薄膜的性能通常很大程度上取决于其氧化学计量,但几乎没有方法可以可靠地就地提取此信息。在这项工作中,描述了从通过阻抗谱获得的化学电容分析得出致密Pr_0.7Ce_0.9Othin薄膜的氧非化学计量。在450至800°C的温度范围和10_-的氧分压范围内,对形式为Pr_0.1Ce_0.9O_2-δ/ Y_0.16Zr_0.84O_1.92 /Pr_0.1Ce_0.9O_2-δ的电化学电池进行测量5至1 atm O_2。借助缺陷平衡模型,近似值将化学电容直接与非化学计量有关,而无需拟合参数。计算出的非化学计量关系允许提取定义缺陷产生的热力学常数。发现这些常数与通过热重分析得出的体积值基本一致,从而证实了该技术适用于测量薄氧化膜的氧非化学计量。还讨论了在钙钛矿结构氧化物膜的早期化学电容研究中观察到的潜在误差来源。

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  • 来源
    《Advanced Functional Materials 》 |2013年第17期| 2168-2174| 共7页
  • 作者单位

    Department of Materials Science and Engineering Massachusetts Institute of Technology Cambridge, MA 02139, USA;

    Department of Materials Science and Engineering Massachusetts Institute of Technology Cambridge, MA 02139, USA, International Institute for Carbon Neutral Energy Research (WPI-I2CNER) Kyushu University Nishi-ku Fukuoka 819-0395, Japan;

    Department of Materials Science and Engineering Massachusetts Institute of Technology Cambridge, MA 02139, USA;

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