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Effects of the molecule-electrode interface on the low-bias conductance of Cu-H-2-Cu single-molecule junctions

机译:分子-电极界面对Cu-H-2-Cu单分子结低偏压电导的影响

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The atomic structure and electronic transport properties of a single hydrogen molecule connected to both symmetric and asymmetric Cu electrodes are investigated by using the non-equilibrium Green's function formalism combined with the density functional theory. Our calculations show that in symmetric Cu-H-2-Cu junctions, the low-bias conductance drops rapidly upon stretching, while asymmetric ones present a low-bias conductance spanning the 0.2-0.3 G(0) interval for a wide range of electrode separations. This is in good agreement with experiments on Cu atomic contacts in a hydrogen environment. Furthermore, the distribution of the calculated vibrational energies of the two hydrogen atoms in the asymmetric Cu-H-2-Cu junction is also consistent with experiments. These findings provide clear evidence for the formation of asymmetric Cu-H-2-Cu molecular junctions in breaking Cu atomic contacts in the presence of hydrogen and are also helpful for the design of molecular devices with Cu electrodes. Published by AIP Publishing.
机译:通过使用非平衡格林函数形式学和密度泛函理论,研究了连接到对称和不对称铜电极上的单个氢分子的原子结构和电子输运性质。我们的计算表明,在对称的Cu-H-2-Cu结中,低偏置电导率在拉伸时迅速下降,而非对称的结表示低偏置电导,跨越0.2-0.3 G(0)区间,适用于宽范围的电极分离。这与在氢环境中进行Cu原子接触的实验非常吻合。此外,在不对称的Cu-H-2-Cu结中两个氢原子的计算振动能的分布也与实验一致。这些发现为在存在氢的情况下破坏Cu原子接触时形成不对称的Cu-H-2-Cu分子结提供了明确的证据,也有助于设计带有Cu电极的分子器件。由AIP Publishing发布。

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