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Electronic Structure and Magnetism of Mn-Doped ZnO Nanowires

机译:Mn掺杂ZnO纳米线的电子结构和磁性

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The geometric structures, electronic and magnetic properties of Mn-doped ZnO nanowires were investigated using density functional theory. The results indicated that all the calculated energy differences were negative, and the energy of the ground state was 0.229 eV lower than ferromagnetic coupling, which show higher stability in antiferromagnetic coupling. The calculated results indicated that obvious spin splitting phenomenon occurred near the Femi level. The Zn atoms on the inner layer of ZnO nanowires are easily substituted by Mn atoms along the [0001] direction. It was also shown that the Mn2+-O2−-Mn2+ magnetic coupling formed by intermediate O atom was proved to be caused by orbital hybridization between Mn 3d and O 2p states. The magnetic moments were mainly attributed to the unpaired Mn 3d orbitals, but not relevant with doping position of Mn atoms. Moreover, the optical properties of Mn-doped ZnO nanowires exhibited a novel blue-shifted optical absorption and enhanced ultraviolet-light emission. The above results show that the Mn-doped ZnO nanowires are a new type of magneto-optical materials with great promise.
机译:利用密度泛函理论研究了Mn掺杂ZnO纳米线的几何结构,电子和磁性。结果表明,计算得到的所有能量差均为负,基态能量比铁磁耦合低0.229 eV,在反铁磁耦合中具有较高的稳定性。计算结果表明,在费米能级附近发生了明显的自旋分裂现象。沿着[0001]方向,ZnO纳米线的内层上的Zn原子容易被Mn原子取代。还表明由中间O原子形成的Mn 2 + -O 2- -Mn 2 + 磁耦合被证明是引起的通过Mn 3d和O 2p态之间的轨道杂交得到。磁矩主要归因于未配对的Mn 3d轨道,但与Mn原子的掺杂位置无关。此外,Mn掺杂的ZnO纳米线的光学性能表现出新颖的蓝移光吸收和增强的紫外光发射。以上结果表明,Mn掺杂的ZnO纳米线是一种新型的磁光材料,具有广阔的前景。

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