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Numerical investigation of a molecular switch based on conformational change, with the inclusion of contacts

机译:基于构象变化并包含接触的分子开关的数值研究

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Although very significant difficulties have so far prevented their usage in practical applications, single-molecule devices are still considered the ultimate step in the scaling-down process of electronic circuits. One of the possible, proposed approaches to molecular-scale electronics consists in replicating the classical architecture based on three-terminal devices, which has so far been so successful with CMOS technology. However, it has been shown that modulation of molecular conductance via a purely electrostatic effect (such as in field-effect transistors) is not viable according to P. Damle (2002), and that, in order to obtain a reasonable modulation of conductance, either mechanical deformation of otherwise induced conformational changes are necessary. In this paper, we present our investigation of this latter approach, focusing on a class of molecules that may allow the implementation of switching functionalities. Switching is obtained by means of the action of a transverse electric field which induces a conformational change, thereby altering the transparency of intramolecular barriers and, as a result, the conduction state of the molecule.
机译:尽管到目前为止,非常大的困难阻止了它们在实际应用中的使用,但是单分子器件仍然被认为是电子电路按比例缩小过程中的最终步骤。可能的,建议的分子尺度电子学方法之一是复制基于三端子设备的经典体系结构,到目前为止,这种结构在CMOS技术上已经非常成功。但是,根据P. Damle(2002)的研究,通过纯静电效应(例如在场效应晶体管中)进行分子电导调制是不可行的,为了获得合理的电导调制,否则需要其他方式引起的构象变化的机械变形。在本文中,我们介绍了对后一种方法的研究,重点研究了一类可能允许实现开关功能的分子。借助于引起构象变化的横向电场的作用来获得转换,从而改变分子内屏障的透明性,并因此改变分子的导电状态。

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