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Current’s Fluctuations through Molecular Wires Composed of Thiophene Rings

机译:电流通过噻吩环组成的分子线的波动

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摘要

We study theoretically the electronic transport and quantum fluctuations in single-molecule systems using thiophene rings as integrated elementary functions, as well as the dependence of these properties with the increase of the coupled rings, i.e., as a quantum wire. In order to analyze the current flow through these molecular systems, the thiophene rings are considered to be connected to metal contacts, which, in general terms, will be related to the application of voltages (bias voltages or gate voltages) to generate non-equilibrium behavior between the contacts. Due to the nonlinear behavior that is generated when said voltages are applied, it is possible to observe quantum fluctuations in the transport properties of these molecular wires. For the calculation of the transport properties, we applied a tight-binding approach using the Landauer–Büttiker formalism and the Fischer–Lee relationship, by means of a semi-analytic Green’s function method within a real-space renormalization (decimation procedure). Our results showed an excellent agreement with results using a tight-binding model with a minimal number of parameters reported so far for these molecular systems.
机译:我们从理论上研究了使用噻吩环作为集成基本函数的单分子系统中的电子输运和量子涨落,以及这些性质随耦合环(即作为量子线)的增加的依赖性。为了分析流过这些分子系统的电流,噻吩环被认为与金属触点相连,一般来说,这与施加电压(偏置电压或栅极电压)以产生不平衡有关。联系人之间的行为。由于当施加所述电压时产生的非线性行为,因此可以观察到这些分子线的传输性质中的量子波动。为了计算传输特性,我们使用了Landauer-Büttiker形式主义和Fischer-Lee关系的紧密绑定方法,通过在实空间重新归一化(抽取过程)中使用半解析格林函数方法。我们的结果表明,使用紧密结合模型的结果与这些分子系统迄今报告的参数最少,结果具有极好的一致性。

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