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首页> 外文期刊>Zeitschrift fur Physikalische Chemie: International Journal of Research in Physical Chemistry and Chemical Physics >Photoelectrochemistry of Ferrites: Theoretical Predictions vs. Experimental Results
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Photoelectrochemistry of Ferrites: Theoretical Predictions vs. Experimental Results

机译:铁氧体的光电化学:理论预测与实验结果

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摘要

This paper gives an overview about recent theoretical and experimental work on electronic and optical properties of spinel ferrites MFe2O4. These compounds have come into focus of research due to their possible application as photocatalyst material for photoelectrochemical water splitting. The theoretical background of state-of-the-art quantum-chemical approaches applied for predicting electronic and optical band gaps, absolute band positions, optical absorption spectra, dielectric functions and Raman spectra, is briefly reviewed. Recent applications of first-principles methods on magnetic and electronic properties of ferrites with M = Mg and the first row of subgroup elements Sc to Zn are presented, where it is shown that the fundamental band gap is strongly dependent on the spin state and the degree of inversion of the spinel structure. The observed variation of electronic properties may serve as an explanation for the large scattering of experimental results. The exchange of M and Fe cations has also a pronounced effect on the Raman spectra of ferrites, which is analyzed at atomic scale from first principles. Calculated optical absorption spectra of ferrites are compared to experimental spectra. The electronic nature of the first excitations and the role of oxygen vacancies are discussed. For the calculation of absolute band positions, which have a significant impact on the photoelectrochemical activity of the ferrites, models of the most stable ferrite surfaces are developed that take into account their polar nature and the interaction with the solvent. Theoretically predicted valence and conduction band edges are compared to results from electrochemical measurements. The role of cation exchange on the surface electronic structure is investigated both theoretically and experimentally.
机译:本文概述了近尖晶石MFE2O4的电子和光学性质的近期理论和实验工作。由于它们可能的应用作为光催化剂材料,这些化合物的研究焦点是用于光电化学水分裂的光催化剂。简要回顾了应用用于预测电子和光带间隙,绝对带位置,光学吸收光谱,介质功能和拉曼光谱的最先进的量子化学方法的理论背景。介绍了第一原理方法对具有M = MG的铁氧体的磁性和电子性质以及第一排亚组元素SC至Zn的方法,示出了基波隙差距强烈地取决于旋转状态和程度尖晶石结构的反演。所观察到的电子性质的变化可以作为实验结果的大散射的解释。 M和Fe阳离子的交换也对铁氧体的拉曼光谱产生了明显的影响,从第一个原则以原子标度分析。将计算化铁氧体的光学吸收光谱与实验光谱进行比较。讨论了第一次激励的电子性质和氧空缺的作用。为了计算对铁氧体的光电化学活性产生显着影响的绝对带位置,开发了最稳定的铁氧体表面的模型,以考虑其极性性质和与溶剂的相互作用。比较理论上预测的价和传导边缘与电化学测量结果进行比较。理论上和实验,在理论上和实验上研究了阳离子交换对表面电子结构的作用。

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