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Conduction in graphenes

机译:石墨烯中的导电

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摘要

It is shown that, within the tight-binding approximation, Fermi-level ballistic conduction for a perimeter-connected graphene fragment follows a simple selection rule: the zero eigenvalues of the molecular graph and of its subgraph minus both contact vertices must be equal in number, as must those of the two subgraphs with single contact vertices deleted. In chemical terms, the new rule therefore involves counting nonbonding orbitals of four molecules. The rule is initially derived within the source and sink potential scattering framework, but has equivalent forms that unify the molecular-orbital and valence-bond approaches to conduction. It is shown that the new selection rule can be cast in terms of Kekulé counts, bond orders, and frontier-orbital coefficients. In particular, for a Kekulean graphene, conduction pathways are shown to be ranked in efficiency by a (nonmonotonic) function of Pauling bond order between the contact vertices. Frontier-orbital analysis of conduction approximates this function. For a monoradical graphene, the analogous function is shown to depend on Pauling spin densities at contact vertices.
机译:结果表明,在紧密结合近似中,与周边连接的石墨烯片段的费米能级弹道传导遵循一个简单的选择规则:分子图及其子图的零特征值减去两个接触顶点的数量必须相等,必须删除两个具有单个接触顶点的子图中的那些。在化学术语上,新规则因此涉及对四个分子的非键合轨道进行计数。该规则最初是在源和汇势散射框架内得出的,但具有等效形式,这些形式统一了分子轨道和价键键合方法。结果表明,新的选择规则可以根据Kekulé计数,键序和边界轨道系数进行转换。特别是,对于Kekulean石墨烯,导电路径显示为通过接触顶点之间的Pauling键阶的(非单调)函数在效率上排名。传导的前沿轨道分析近似于此函数。对于单自由基石墨烯,显示的类似功能取决于接触顶点处的鲍林自旋密度。

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