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Effect of Niobium Segregation on the Surface Properties of Titanium Dioxide

机译:铌偏析对二氧化钛表面性质的影响

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The present paper considers the effect of segregation on the performance of photo-electrode materials for photo-electrochemical water splitting. This phenomenon, which alters the surface composition of a material during processing at elevated temperatures, has the capacity to dominate interfacial charge transfer between the photo-electrode and the electrolyte. As the present understanding of segregation in metal oxides is limited, this paper aims at addressing the need to collect empirical data which can be used for the development of novel materials. In the present investigation, Nb surface segregation was investigated at 1273 K under high and low oxygen activity using secondary ion mass spectrometry (SIMS). A calibration procedure was used to enable quantifiable data and Nb was observed to segregate strongly, especially at high oxygen activity. While this was attributed to the defect disorder, it remained unclear whether gas/solid equilibrium was achieved, and consequently whether the observed behaviour represents equilibrium segregation. Irrespectively, the observed behaviour clearly illustrates how the surface composition of a metal oxide can be altered through the control of segregation. This must be considered in the pursuit of high performance photo-electrode materials for water splitting under sunlight.
机译:本文考虑了偏析对光电化学水分裂的光电电极材料性能的影响。这种现象,其在升高的温度下加工过程中改变了材料的表面组成,具有在光电极和电解质之间支配界面电荷转移的能力。随着对金属氧化物中的偏析的理解有限,本文旨在解决需要用于开发新材料的经验数据的需要。在本研究中,使用二次离子质谱法(SIMS)在高氧活性下在1273k下在1273k下进行Nb表面偏析。使用校准程序来实现可量化的数据,并且观察到Nb强烈地分离,特别是在高氧活性下。虽然这归因于缺陷障碍,但仍然不清楚是否达到了气体/固体平衡,因此观察到的行为是否代表平衡偏析。不断地,观察到的行为清楚地示出了如何通过对偏析进行控制来改变金属氧化物的表面组成。这必须考虑在追求阳光下的水分裂高性能光电电极材料。

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