论文标题

分子连接电子特性的动力溶剂控制模型

A model for dynamical solvent control of molecular junction electronic properties

论文作者

Gelin, Maxim F., Kosov, Daniel S.

论文摘要

分子连接的电子传输特性的实验测量通常在溶剂中进行。溶剂分子耦合和溶剂的物理特性可以用作通过分子控制电流的外部刺激。在本文中,我们提出了一个模型,该模型包括溶剂 - 分子相互作用的动态效应,在非平衡绿色的电流功能计算中。溶剂被认为是一种宏观偶极矩,可以随机地重新定位并与通过分子连接的电子隧穿相互作用。使用Furutsu-Novikov方法在随后实现旋转变量的随机实现中,用于精确闭合随机相关功能的无限层次结构,在时间域中求解了用于电子绿色功能的Keldysh-Kadanoff-baym方程。开发的理论需要使用宽频段近似以及对溶剂自由度的经典处理。该理论应用于模型分子连接。已经证明,不仅可以使用分子连接和溶剂之间的静电相互作用,而且还可以使用溶剂粘度来控制连接的电性能。旋转偶极矩的比对破坏了传输的粒子孔对称性,该透射率有利于孔或电子传输通道,具体取决于对齐电位。

Experimental measurements of electron transport properties of molecular junctions are often performed in solvents. Solvent-molecule coupling and physical properties of the solvent can be used as the external stimulus to control electric current through a molecule. In this paper, we propose a model, which includes dynamical effects of solvent-molecule interaction in the non-equilibrium Green's function calculations of electric current. The solvent is considered as a macroscopic dipole moment that reorients stochastically and interacts with the electrons tunnelling through the molecular junction. The Keldysh-Kadanoff-Baym equations for electronic Green's functions are solved in time-domain with subsequent averaging over random realisations of rotational variables using Furutsu-Novikov method for exact closure of infinite hierarchy of stochastic correlation functions. The developed theory requires the use of wide-band approximation as well as classical treatment of solvent degrees of freedom. The theory is applied to a model molecular junction. It is demonstrated that not only electrostatic interaction between molecular junction and solvent but also solvent viscosity can be used to control electrical properties of the junction. Aligning of the rotating dipole moment breaks particle-hole symmetry of the transmission favouring either hole or electron transport channels depending upon the aligning potential.

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