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Electronic structure and transport of a carbon chain between graphene nanoribbon leads

机译:石墨烯纳米带引线之间的碳链的电子结构和传输

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摘要

The electronic structure and transport property of a carbon chain between two graphene nanoribbon leads are studied using an ab initio tight-binding (TB) model and Landauer's formalism combined with a non-equilibrium Green's function. The TB Hamiltonian and overlap matrices are extracted from first-principles density functional calculations through the quasi-atomic minimal basis orbital scheme. The accuracy of the TB model is demonstrated by comparing the electronic structure from the TB model with that from first-principles density functional theory. The results of electronic transport on a carbon atomic chain connected to armchair and zigzag graphene ribbon leads, such as different transport characters near the Fermi level and at most one quantized conductance, reveal the effect of the electronic structure of the leads and the scattering from the atomic chain. In addition, bond length alternation and an interesting transmission resonance are observed in the atomic chain connected to zigzag graphene ribbon leads. Our approach provides a promising route to quantitative investigation of both the electronic structure and transport property of large systems.
机译:使用从头算紧密结合(TB)模型和结合非平衡格林函数的Landauer形式论,研究了两个石墨烯纳米带引线之间的碳链的电子结构和传输特性。通过准原子最小基轨道方案从第一原理密度函数计算中提取了TB哈密顿矩阵和交叠矩阵。通过比较TB模型的电子结构与第一原理密度泛函理论的电子结构,证明了TB模型的准确性。连接到扶手椅和锯齿形石墨烯带状引线的碳原子链上的电子传输结果,例如费米能级附近的不同传输特性和至多一个量化电导,揭示了引线电子结构的影响以及来自电子的散射。原子链。此外,在连接到锯齿形石墨烯带状引线的原子链中观察到键长交替和有趣的传输共振。我们的方法为大型系统的电子结构和传输特性的定量研究提供了一条有希望的途径。

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