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Effect of edge reconstruction and passivation on zero-energy states and magnetism in triangular graphene quantum dots with zigzag edges

机译:边缘重构和钝化对之字形边缘三角形石墨烯量子点的零能态和磁性的影响

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摘要

We present the results of ab initio calculations of the effect of reconstruction and passivation of zigzag edges on the electronic and magnetic properties of triangular graphene quantum dots. We find that, similarly to nanoribbons, hydrogen-passivated ideal zigzag edges are energetically favored over the pentagon-heptagon zigzag. However, the reconstructed edge is more stable in the absence of hydrogen, thus, delayed passivation with H may lock the dot in such an unfavorable configuration. Both hydrogen-passivated edge morphologies lead to a band of states at the Fermi level. Unlike in nanoribbons, this quasidegenerate band results in net spin polarization for structures with zigzag edge of all sizes studied here. For triangular dots with pentagon-heptagon zigzag edge, a larger width of the zero-energy band is predicted, leading to the loss of net magnetization.
机译:我们介绍了从头计算的锯齿形边缘的重构和钝化对三角形石墨烯量子点的电子和磁性的影响。我们发现,与纳米带相似,氢钝化的理想之字形边缘在能量上比五边形,七边形之字形更受青睐。但是,在没有氢的情况下,重建的边缘更稳定,因此,延迟的H钝化可能会将点锁定在这种不利的配置中。两种氢钝化的边缘形态都导致费米能级的能带。与纳米带不同,此准生成带对此处研究的所有大小的锯齿形边缘的结构产生净自旋极化。对于具有五边形-七边形之字形边缘的三角形点,预计零能带的宽度较大,从而导致净磁化强度损失。

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