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First principle investigation of electronic transport properties of the edge shaped graphene-porphine molecular junction device

机译:边缘形石墨烯-卟啉分子结器件的电子输运性质的第一性原理研究

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There has been considerable interest in engaging porphyrin, which plays a central role in a variety of biological processes, as a molecular device for bio-inspired system application. This paper is focused on molecular junctions made up of porphine, the metal-free counterpart of porphyrin, and graphene electrode. Electronic properties are elucidated using the density functional theory and non-equilibrium Green’s function method. Excellent coupling between the porphine molecule and graphene electrode is obtained by carbon-carbon covalent bonding and has been analyzed by the electron difference density. The current-voltage curve and the evolution of the transmission spectrum with applied voltage bias have also been investigated. A noteworthy observation is the pronounced negative differential resistance (NDR) behavior, obtained when a benzene ring precisely bridges two porphine molecules. The projected device density of states and the potential profile along with the charge distribution at various applied voltages have been analyzed to understand the NDR behavior. The study confirms that the excess current in the NDR region can be attributed to resonant tunneling through the potential barrier.
机译:卟啉作为一种生物启发的系统应用的分子装置,在多种生物学过程中起着核心作用,引起了人们的极大兴趣。本文重点研究由卟啉,无金属卟啉对应物和石墨烯电极组成的分子连接。使用密度泛函理论和非平衡格林函数方法阐明了电子性质。通过碳-碳共价键获得了卟啉分子与石墨烯电极之间的出色偶联,并通过电子差密度进行了分析。还研究了电流-电压曲线以及在施加电压偏置的情况下透射光谱的变化。值得注意的观察是当苯环精确地桥接两个卟啉分子时获得的显着的负微分电阻(NDR)行为。分析了预计的器件状态密度和电势分布,以及各种施加电压下的电荷分布,以了解NDR行为。研究证实,NDR区域中的过量电流可归因于穿过势垒的共振隧穿。

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