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用于生物传感器材料应用的缺陷锯齿形石墨烯纳米带器件的局域电流分析。

Local current analysis on defective zigzag graphene nanoribbons devices for biosensor material applications.

机构信息

Institut für Chemie und Biochemie, Freie Universität Berlin, Berlin, Germany.

Laboratoire de Physique et Chimie Théoriques, CNRS-Université de Lorraine, UMR 7019, ICPM, Metz.

出版信息

J Comput Chem. 2021 Aug 5;42(21):1475-1485. doi: 10.1002/jcc.26557. Epub 2021 May 14.

DOI:10.1002/jcc.26557
PMID:33988254
Abstract

In this contribution, we aim at investigating the mechanism of biosensing in graphene-based materials from first principles. Inspired by recent experiments, we construct an atomistic model composed of a pyrene molecule serving as a linker fragment, which is used in experiment to attach certain aptamers, and a defective zigzag graphene nanoribbons (ZGNRs). Density functional theory including dispersive interaction is employed to study the energetics of the linker absorption on the defective ZGNRs. Combining non-equilibrium Green's function and the Landauer formalism, the total current-bias voltage dependence through the device is evaluated. Modifying the distance between the linker molecule and the nanojunction plane reveals a quantitative change in the total current-bias voltage dependence, which correlates to the experimental measurements. In order to illuminate the geometric origin of these variation observed in the considered systems, the local currents through the device are investigated using the method originally introduced by Evers and co-workers. In our new implementation, the numerical efficiency is improved by applying sparse matrix storage and spectral filtering techniques, without compromising the resolution of the local currents. Local current density maps qualitatively demonstrate the local variation of the interference between the linker molecule and the nanojunction plane.

摘要

在本研究中,我们旨在从第一性原理出发,研究基于石墨烯的材料的生物传感机制。受近期实验的启发,我们构建了一个由作为连接片段的芘分子组成的原子模型,该模型在实验中用于连接特定的适体和缺陷型锯齿状石墨烯纳米带(ZGNRs)。我们采用包含色散相互作用的密度泛函理论来研究连接体在缺陷型 ZGNRs 上的吸附能。结合非平衡格林函数和朗道尔公式,我们评估了通过器件的总电流-偏压依赖关系。通过改变连接分子和纳米结平面之间的距离,揭示了总电流-偏压依赖关系的定量变化,这与实验测量结果相关。为了阐明在考虑的系统中观察到的这些变化的几何起源,我们使用 Evers 及其同事最初引入的方法研究了通过器件的局域电流。在我们的新实现中,通过应用稀疏矩阵存储和谱滤波技术提高了数值效率,同时不影响局域电流的分辨率。局域电流密度图定性地证明了连接体与纳米结平面之间的干涉的局域变化。

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