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首页> 外文期刊>The Journal of Chemical Physics >Iron-phthalocyanine molecular junction with high spin filter efficiency and negative differential resistance
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Iron-phthalocyanine molecular junction with high spin filter efficiency and negative differential resistance

机译:具有高自旋过滤效率和负微分电阻的铁-酞菁分子结

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摘要

We investigate the spin transport properties of iron-phthalocyanine (FePc) molecule sandwiched between two N-doped graphene nanoribbons (GNRs) based on the density functional theory and nonequilibrium Greens function methods. Our calculated results clearly reveal that the FePc molecular junction has high spin-filter efficiency as well as negative differential resistance (NDR). The zero-bias conductance through FePc molecule is dominated by the spin-down electrons, and the observed NDR originates from the bias-dependent effective coupling between the FePc molecular orbitals and the narrow density of states of electrodes. The remarkable high spin-filter efficiency and NDR are robust regardless of the edge shape and the width of GNRs, and the N-doping site in GNRs. These predictions indicate that FePc junction holds great promise in molecular electronics and spintronics applications.
机译:我们基于密度泛函理论和非平衡Greens函数方法研究夹在两个N掺杂石墨烯纳米带(GNR)之间的铁酞菁(FePc)分子的自旋输运性质。我们的计算结果清楚地表明,FePc分子结具有很高的自旋过滤效率以及负微分电阻(NDR)。通过FePc分子的零偏压电导主要由向下旋转的电子控制,观察到的NDR源自FePc分子轨道与窄的电极状态密度之间的依赖于偏压的有效耦合。无论GNR的边缘形状和宽度以及GNR中的N掺杂位点如何,其显着的高自旋滤波器效率和NDR都很鲁棒。这些预测表明FePc结在分子电子学和自旋电子学应用中具有广阔的前景。

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