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同时进行电阻抗和光吸收光谱法,快速表征掺杂氧化铈中的氧空位和小极化子。

Simultaneous electrical impedance and optical absorption spectroscopy for rapid characterization of oxygen vacancies and small polarons in doped ceria.

机构信息

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

出版信息

Phys Chem Chem Phys. 2023 Feb 15;25(7):5731-5742. doi: 10.1039/d2cp04901e.

Abstract

Mixed ionic-electronic conductors (MIECs) play a central role in emerging energy conversion and energy efficient computational technologies. However, it is both challenging and resource demanding to characterize MIECs over the broad range of experimental conditions of interest, thereby significantly limiting their study and applications. Here, a novel method of a simultaneous measurement of electrical conductivity and optical absorption of thin films in out-of-equilibrium state, during a reduction process, is employed for a comprehensive study of a MIEC oxide, PrCeO (PCO). It enables, orders of magnitude faster than by established techniques, characterization of the oxygen vacancy and small polaron formation and transport as a function of temperature (demonstrated here down to 200 °C), in a wide range of deviation from stoichiometry, . For instance, at 600 °C the PCO properties were obtained during a ten minute reduction process, in the O range from 1 to 10 bar. The experimental results show that the oxygen vacancy mobility is constant while the small polaron mobility is linear in , in the whole O range, which yields the total conductivity quadratic in . Furthermore, the method was applied to study the modification of PCO's transport properties with composition change. It was shown that increasing from 0.1 to 0.2 suppresses the ionic mobility and, at the same time, enhances the small polaron mobility. Finally, the optically determined was used to define an instantaneous oxygen activity in PCO that can be accessed in the out-of-equilibrium experiments. This work opens up new possibilities to study the effects of microstructure, strain and other applied external stimuli on the transport and thermodynamic properties of PCO and similar types of MIEC materials.

摘要

混合离子电子导体(MIEC)在新兴的能量转换和节能计算技术中起着核心作用。然而,要在广泛的感兴趣的实验条件下对 MIEC 进行特性描述,既具有挑战性,又需要耗费大量资源,从而极大地限制了它们的研究和应用。在这里,我们采用了一种新的方法,即在还原过程中同时测量非平衡状态下薄膜的电导率和光吸收,从而对 MIEC 氧化物 PrCeO(PCO)进行全面研究。与已建立的技术相比,该方法能够以快几个数量级的速度,在很大的化学计量偏离范围内(这里演示的温度范围低至 200°C),对氧空位和小极化子的形成和输运进行综合研究。例如,在 600°C 下,通过十分钟的还原过程,在 1 到 10 巴的 O 范围内获得了 PCO 的性质。实验结果表明,在整个 O 范围内,氧空位迁移率是恒定的,而小极化子迁移率与 呈线性关系,这导致总电导率与 呈二次方关系。此外,该方法还被应用于研究组成变化对 PCO 输运性质的改性。结果表明,随着 的增加(从 0.1 到 0.2),离子迁移率降低,同时小极化子迁移率增强。最后,通过光测定的 被用于定义 PCO 中的瞬时氧活度,这可以在非平衡实验中获得。这项工作为研究微观结构、应变和其他外部刺激对 PCO 和类似类型的 MIEC 材料的输运和热力学性质的影响开辟了新的可能性。

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