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First-principles study and electronic structures of Mn-doped ultrathin ZnO nanofilms

机译:Mn掺杂超薄ZnO纳米薄膜的第一性原理研究和电子结构

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摘要

The first-principles density functional calculation is used to investigate the electronic structures and magnetic properties of Mn-doped and N-co-doped ZnO nanofilms.The band structure calculation shows that the band gaps of ZnO films with 2,4,and 6 layers are larger than the band gap of the bulk with wurtzite structure and decrease with the increase of film thickness.However,the four-layer ZnO nanofilms exhibit ferromagnetic phases for Mn concentrations less than 24% and 12% for Mn-doping performed in the whole layers and two layers of the film respectively,while they exhibit spin glass phases for higher Mn concentrations.It is also found,on the one hand,that the spin glass phase turns into the ferromagnetic one,with the substitution of nitrogen atoms for oxygen atoms,for nitrogen concentrations higher than 16% and 5% for Mn-doping performed in the whole layers and two layers of the film respectively.On the other hand,the spin-glass state is more stable for ZnO bulk containing 5% of Mn impurities,while the ferromagnetic phase is stable by introducing the p-type carriers into the bulk system.Moreover,it is shown that using the effective field theory for ferromagnetic system,the Curie temperature is close to the room temperature for the undamped Ruderman-Kittel-Kasuya-Yoshida (RKKY) interaction.
机译:用第一性原理密度泛函方法研究了Mn掺杂和N掺杂的ZnO纳米薄膜的电子结构和磁性能。能带结构计算表明,具有2、4和6层的ZnO薄膜的带隙ZnO纳米薄膜的厚度大于纤锌矿型结构的带隙,并随薄膜厚度的增加而减小。但是,四层ZnO纳米薄膜在锰浓度小于24%时表现出铁磁相,而锰掺杂总体上表现出12%。薄膜分别具有两层和两层,而它们表现出较高的Mn浓度的自旋玻璃相。一方面,还发现自旋玻璃相变成了铁磁相,用氮原子代替了氧原子在薄膜的整个层和两层中分别进行氮掺杂时,氮浓度分别高于16%和5%。另一方面,含有5%的M的ZnO块体的自旋玻璃态更稳定。通过将p型载流子引入到体相系统中,铁磁性相变得稳定。此外,使用有效磁场理论对铁磁性系统进行了研究,表明居里温度接近于无阻尼Ruderman- Kittel-Kasuya-Yoshida(RKKY)互动。

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  • 来源
    《中国物理:英文版》 |2012年第10期|362-368|共7页
  • 作者单位

    LMPHE(URAC 12), Departement de Physique, Faculté des Sciences, Université Mohammed V-Agdal, Rabat, Morocco;

    LMPHE(URAC 12), Departement de Physique, Faculté des Sciences, Université Mohammed V-Agdal, Rabat, Morocco;

    LMPHE(URAC 12), Departement de Physique, Faculté des Sciences, Université Mohammed V-Agdal, Rabat, Morocco;

    LPHE, Departement de Physique, Faculté des Sciences, Université Mohammed V-Agdal, Rabat, Morocco;

    Institute of Nanomaterials and Nanotechnology, MAScIR, Rabat, Morocco;

  • 收录信息 中国科学引文数据库(CSCD);中国科技论文与引文数据库(CSTPCD);
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