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Study of the relation between oxygen vacancies and ferromagnetism in Fe-doped TiO2 nano-powders

机译:掺铁TiO2纳米粉体中氧空位与铁磁性的关系研究

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In this work, we present an experimental and theoretical study of structural and magnetic properties of Fe doped rutile TiO2 nanopowders. We show that Fe-doping induces the formation of oxygen vacancies in the first-sphere coordination of iron ions, which are in +2 and +3 oxidation states. We found that Fe ions form dimers that share one oxygen vacancy in the case of Fe3+ and two oxygen vacancies in the case of Fe2+. The saturation magnetization is almost independent of iron concentration and slightly increases with the relative fraction of Fe2+. Ab initio calculations show that two Fe ions sharing an oxygen vacancy are coupled ferromagnetically, forming a bound magnetic polaron (BMP), but two neighbor BMPs are aligned antiparallel to each other. Extra electron doping plays a fundamental role mediating the magnetic coupling between the ferromagnetic entities: carriers, possibly concentrated at grain boundaries, mediate between the BMP to produce ferromagnetic alignment.
机译:在这项工作中,我们提出了铁掺杂金红石型TiO2纳米粉的结构和磁性的实验和理论研究。我们表明,Fe掺杂在铁离子的第一球配位中诱导氧空位的形成,铁离子处于+2和+3氧化态。我们发现,Fe离子形成的二聚体在Fe 3 + 的情况下共享一个氧空位,在Fe 2 + 的情况下共享两个氧空位。饱和磁化强度几乎与铁浓度无关,并且随Fe 2 + 的相对含量而略有增加。从头算计算表明,两个共享氧空位的Fe离子铁磁耦合,形成束缚磁极化子(BMP),但两个相邻的BMP彼此反平行排列。额外的电子掺杂在介导铁磁实体之间的磁耦合中起着基本作用:可能集中在晶界的载流子在BMP之间介导以产生铁磁排列。

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