Physical and Materials Chemistry Division, National Chemical Laboratory, Council of Scientific and Industrial Research, Pashan, Pune, India.
Adv Mater. 2010 Aug 3;22(29):3125-55. doi: 10.1002/adma.200903891.
Over the past decade intensive research efforts have been carried out by researchers around the globe on exploring the effects of dilute doping of magnetic impurities on the physical properties of functional non-magnetic metal oxides such as TiO(2) and ZnO. This effort is aimed at inducing spin functionality (magnetism, spin polarization) and thereby novel magneto-transport and magneto-optic effects in such oxides. After an early excitement and in spite of some very promising results reported in the literature, this field of diluted magnetic semiconducting oxides (DMSO) has continued to be dogged by concerns regarding uniformity of dopant incorporation, the possibilities of secondary ferromagnetic phases, and contamination issues. The rather sensitive dependence of magnetism of the DMSO systems on growth methods and conditions has led to interesting questions regarding the specific role played by defects in the attendant phenomena. Indeed, it has also led to the rapid re-emergence of the field of defect ferromagnetism. Many theoretical studies have contributed to the analysis of diverse experimental observations in this field and in some cases to the predictions of new systems and scenarios. In this review an attempt is made to capture the scope and spirit of this effort highlighting the successes, concerns, and questions.
在过去的十年中,全球研究人员进行了密集的研究,探索在功能非磁性金属氧化物(如 TiO(2) 和 ZnO)中稀释掺杂磁性杂质对其物理性质的影响。这一努力旨在诱导自旋功能(磁性、自旋极化),从而在这些氧化物中产生新的磁输运和磁光效应。尽管文献中报道了一些非常有前景的结果,但在早期的兴奋之后,这个稀释磁性半导体氧化物(DMSO)领域仍然存在着对掺杂剂掺入均匀性、可能存在的二级铁磁相以及污染问题的担忧。DMSO 体系的磁性对生长方法和条件的相当敏感依赖性导致了关于伴随现象中缺陷所起的具体作用的有趣问题。事实上,这也导致了缺陷铁磁体领域的迅速重新出现。许多理论研究有助于分析该领域的各种实验观察结果,并在某些情况下预测新的系统和方案。在这篇综述中,我们试图捕捉到这一努力的范围和精神,突出其成功、关注点和问题。