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碳原子接触中的电流诱导动力学。

Current-induced dynamics in carbon atomic contacts.

机构信息

DTU-Nanotech, Dept. of Micro- and Nanotechnology, Technical University of Denmark (DTU), Ørsteds Plads, Bldg. 345E, DK-2800 Lyngby, Denmark.

出版信息

Beilstein J Nanotechnol. 2011;2:814-23. doi: 10.3762/bjnano.2.90. Epub 2011 Dec 16.

Abstract

BACKGROUND

The effect of electric current on the motion of atoms still poses many questions, and several mechanisms are at play. Recently there has been focus on the importance of the current-induced nonconservative forces (NC) and Berry-phase derived forces (BP) with respect to the stability of molecular-scale contacts. Systems based on molecules bridging electrically gated graphene electrodes may offer an interesting test-bed for these effects.

RESULTS

We employ a semi-classical Langevin approach in combination with DFT calculations to study the current-induced vibrational dynamics of an atomic carbon chain connecting electrically gated graphene electrodes. This illustrates how the device stability can be predicted solely from the modes obtained from the Langevin equation, including the current-induced forces. We point out that the gate offers control of the current, independent of the bias voltage, which can be used to explore current-induced vibrational instabilities due the NC/BP forces. Furthermore, using tight-binding and the Brenner potential we illustrate how Langevin-type molecular-dynamics calculations including the Joule heating effect for the carbon-chain systems can be performed. Molecular dynamics including current-induced forces enables an energy redistribution mechanism among the modes, mediated by anharmonic interactions, which is found to be vital in the description of the electrical heating.

CONCLUSION

We have developed a semiclassical Langevin equation approach that can be used to explore current-induced dynamics and instabilities. We find instabilities at experimentally relevant bias and gate voltages for the carbon-chain system.

摘要

背景

电流对原子运动的影响仍存在诸多问题,涉及多种机制。最近,人们关注电流诱导的非保守力(NC)和 Berry 相衍生力(BP)对分子尺度接触稳定性的重要性。基于桥接电控石墨烯电极的分子的系统可能为这些效应提供了一个有趣的测试平台。

结果

我们采用半经典 Langevin 方法结合 DFT 计算,研究了连接电控石墨烯电极的原子碳链的电流诱导振动动力学。这说明了如何仅从 Langevin 方程获得的模式(包括电流诱导力)来预测器件稳定性。我们指出,栅极可以独立于偏置电压来控制电流,这可用于探索由于 NC/BP 力引起的电流诱导振动不稳定性。此外,我们使用紧束缚和 Brenner 势说明了如何对包括碳链系统焦耳加热效应在内的 Langevin 型分子动力学计算进行计算。包括电流诱导力的分子动力学能够实现模式之间的能量再分配机制,这是由非谐相互作用介导的,对于描述电加热至关重要。

结论

我们开发了一种半经典 Langevin 方程方法,可用于探索电流诱导的动力学和不稳定性。我们发现对于碳链系统,在实验相关的偏置和栅极电压下存在不稳定性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eb47/3257507/aa9adc3063af/Beilstein_J_Nanotechnol-02-814-g002.jpg

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