Michel Kathrin, Eufinger Jens-Peter, Ulbrich Gregor, Lerch Martin, Janek Juergen, Elm Matthias T
Institute of Physical Chemistry, Justus Liebig University, Heinrich-Buff-Ring 17, 35392 Giessen, Germany.
Institut für Chemie, Technische Universität Berlin, Straße des 17. Juni 135, 10623 Berlin, Germany.
Phys Chem Chem Phys. 2017 Jul 21;19(27):17661-17669. doi: 10.1039/c7cp03164e. Epub 2017 Jul 3.
Solid solutions of ceria and praseodymia are highly relevant for electrochemical applications as the incorporation of praseodymium into the ceria lattice shifts the range of mixed ionic electronic conductivity to higher oxygen partial pressures. To better understand the influence of praseodymium substitution on the transport processes and oxygen storage capacity in ceria, single crystals of ceria substituted with 14 mol% praseodymium have been investigated, obtaining the bulk properties without the influence of grain boundaries. Beside the characterization of structural changes caused by the substitution using XRD and Raman spectroscopy, the electrochemical transport properties of ceria-praseodymia single crystals are reported. Measurements of the total electrical conductivity, the ionic transference number and the non-stoichiometry of CePrZrO were performed in an oxygen partial pressure range of -25 < lg[p(O)/bar] < 0 at 700 °C. With praseodymium being redox active itself, higher values of oxygen deficiency and electrical conductivity than in pure ceria have been observed in the high oxygen partial pressure region, while no significant structural changes occur due to the similar ionic radii of both cations. From measurements of the impedance at different temperatures, the migration enthalpy for the electronic charge carriers has been determined. By analysing the non-stoichiometry at 700 °C using a defect chemical model it was also possible to determine the equilibrium constants of Pr and Ce reduction in CePrZrO single crystals.
二氧化铈和镨的固溶体与电化学应用高度相关,因为将镨掺入二氧化铈晶格会使混合离子电子传导范围向更高的氧分压移动。为了更好地理解镨取代对二氧化铈中传输过程和储氧能力的影响,研究了用14摩尔%镨取代的二氧化铈单晶,获得了不受晶界影响的体相性质。除了使用X射线衍射和拉曼光谱对取代引起的结构变化进行表征外,还报道了二氧化铈 - 镨单晶的电化学传输性质。在700℃下,在 - 25 < lg[p(O)/bar] < 0的氧分压范围内对CePrZrO的总电导率、离子迁移数和非化学计量比进行了测量。由于镨本身具有氧化还原活性,在高氧分压区域观察到比纯二氧化铈更高的氧缺陷和电导率值,而由于两种阳离子的离子半径相似,未发生明显的结构变化。通过在不同温度下测量阻抗,确定了电子载流子的迁移焓。通过使用缺陷化学模型分析700℃下的非化学计量比,还能够确定CePrZrO单晶中Pr和Ce还原的平衡常数。