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Large spin-filtering effect in Ti-doped defective zigzag graphene nanoribbon

机译:钛掺杂缺陷之字形石墨烯纳米带的大自旋过滤效应

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摘要

Through first-principles calculations using the nonequilibrium Green's function formalism together with density functional theory, we study the conductance of double-vacancy zigzag graphene nanoribbons doped with four transition metal atoms Ti, V, Cr and Fe. We show that Ti doping induces large spin-filtering with an efficiency in excess of 90% for bias voltages below 0.5 V, while the other metal adatoms do not induce large spin filtering. This is despite the fact that the Ti dopant possesses small spin moment, while large moments reside on V, Cr and Fe dopants. Our analysis shows that the suppression of transmission in the spin-down channel in the Ti-doped graphene nanoribbon, thus the large spin filtering efficiency, is due to transmission anti-resonance arising from destructive quantum interference. These findings suggest that the decoration of graphene with titanium, and possibly other transition metals, can act as effective spin filters for nanospintronic applications.
机译:通过使用非平衡格林函数形式主义和密度泛函理论的第一性原理计算,我们研究了掺杂有四个过渡金属原子Ti,V,Cr和Fe的双空位之字形石墨烯纳米带的电导率。我们表明,对于低于0.5 V的偏置电压,Ti掺杂会诱导大型自旋滤波,其效率超过90%,而其他金属原子不会诱导大型自旋滤波。尽管存在这样的事实,即Ti掺杂剂的自旋矩较小,而大的矩存在于V,Cr和Fe掺杂剂上。我们的分析表明,在Ti掺杂的石墨烯纳米带中,自旋向下通道中的传输受到抑制,因此自旋过滤效率高,这是由于破坏性量子干扰引起的传输反共振所致。这些发现表明,用钛以及可能的其他过渡金属修饰石墨烯可以充当纳米自旋电子学应用的有效自旋滤波器。

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