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反向交换:一种量化环境大气中氧扩散和表面交换的新方法。

Back-exchange: a novel approach to quantifying oxygen diffusion and surface exchange in ambient atmospheres.

作者信息

Cooper Samuel J, Niania Mathew, Hoffmann Franca, Kilner John A

机构信息

Dyson School of Design Engineering, Imperial College London, London, SW7 1NA, UK.

Department of Materials, Imperial College London, London, SW7 2BP, UK.

出版信息

Phys Chem Chem Phys. 2017 May 17;19(19):12199-12205. doi: 10.1039/c7cp01317e.

Abstract

A novel two-step Isotopic Exchange (IE) technique has been developed to investigate the influence of oxygen containing components of ambient air (such as HO and CO) on the effective surface exchange coefficient (k*) of a common mixed ionic electronic conductor material. The two step 'back-exchange' technique was used to introduce a tracer diffusion profile, which was subsequently measured using Time-of-Flight Secondary Ion Mass Spectrometry (ToF-SIMS). The isotopic fraction of oxygen in a dense sample as a function of distance from the surface, before and after the second exchange step, could then be used to determine the surface exchange coefficient in each atmosphere. A new analytical solution was found to the diffusion equation in a semi-infinite domain with a variable surface exchange boundary, for the special case where D* and k* are constant for all exchange steps. This solution validated the results of a numerical, Crank-Nicolson type finite-difference simulation, which was used to extract the parameters from the experimental data. When modelling electrodes, D* and k* are important input parameters, which significantly impact performance. In this study LaSrCoFeO (LSCF6428) was investigated and it was found that the rate of exchange was increased by around 250% in ambient air compared to high purity oxygen at the same pO. The three experiments performed in this study were used to validate the back-exchange approach and show its utility.

摘要

一种新颖的两步同位素交换(IE)技术已被开发出来,用于研究环境空气中的含氧化合物(如HO和CO)对一种常见的混合离子电子导体材料的有效表面交换系数(k*)的影响。两步“反向交换”技术被用于引入一个示踪剂扩散分布,随后使用飞行时间二次离子质谱仪(ToF-SIMS)对其进行测量。然后,在第二次交换步骤前后,致密样品中氧的同位素分数作为距表面距离的函数,可用于确定每种气氛中的表面交换系数。对于D和k在所有交换步骤中均为常数的特殊情况,在具有可变表面交换边界的半无限域中,找到了扩散方程的一个新的解析解。该解验证了一个数值的、克兰克-尼科尔森型有限差分模拟的结果,该模拟用于从实验数据中提取参数。在对电极进行建模时,D和k是重要的输入参数,它们会显著影响性能。在本研究中,对LaSrCoFeO(LSCF6428)进行了研究,发现在相同的pO下,与高纯度氧气相比,在环境空气中交换速率提高了约250%。本研究中进行的三个实验用于验证反向交换方法并展示其效用。

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