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首页> 外文期刊>Physica, E. Low-dimensional systems & nanostructures >Design of nanoscale molecular wire based on 3, 6-Diphenyl-1, 2, 4, 5-Tetrazine and effect of external electric field on electron transfer in conjugated molecular wire
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Design of nanoscale molecular wire based on 3, 6-Diphenyl-1, 2, 4, 5-Tetrazine and effect of external electric field on electron transfer in conjugated molecular wire

机译:基于3,6-二苯基-1,2,4,4,5-四嗪的纳米级分子线的设计及外电场对共轭分子线中电子转移的影响

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摘要

The electron transport characteristics of a 3, 6-Diphenyl-1, 2, 4, 5-Tetrazine (DPT) single molecular conductor are investigated via the density functional theory (DFT) method. The molecule sandwiched between two gold surfaces. Different linkers such as sulfur, nitrogen, oxygen, CS, CO, CN, NO and NN have been considered to study the role of linkage in the conduction properties of the molecular wire. The charge transfer across the metalmolecule and bonding nature at the interfacial contact were performed by means of the natural bond orbital (NBO) analysis. It is found that Au can covalently bond to DPT through nitrogen or sulfur linkages while its weak interaction through oxygen linkage has non-covalent character in nature. The dependence of the molecular electronic structure of the goldmolecule complexes on the external electric field (EF) has also been studied. It is found that the external EF modifies both the geometry and electronic structure of the molecular wires. The application of EF may increase the molecular conjugation and the induced dipole moment, while decreasing the HOMOLUMO gap. It may also make the spatial distributions of the frontier molecular orbitals move from a fully delocalized form to a partially localized one depending on the EF strength.
机译:通过密度泛函理论(DFT)方法研究了3,6-二苯基-1,2,4,5-Tetrazine(DPT)单分子导体的电子传输特性。分子夹在两个金表面之间。已经考虑使用不同的连接体,例如硫,氮,氧,CS,CO,CN,NO和NN,以研究连接在分子线的导电特性中的作用。通过自然键轨道(NBO)分析,进行了跨金属分子的电荷转移和界面接触处的键合性质。发现Au可以通过氮或硫键与DPT共价键合,而通过氧键的弱相互作用本质上具有非共价特性。还研究了金分子配合物的分子电子结构对外部电场(EF)的依赖性。发现外部EF改变了分子丝的几何形状和电子结构。 EF的应用可以增加分子的共轭作用和诱导的偶极矩,同时减小HOMOLUMO间隙。它还可能使边界分子轨道的空间分布根据EF强度从完全离域的形式移动到部分局域的形式。

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