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夹在金电极中的富勒烯封端手性碳纳米管的手性和长度依赖性电子传输。

Chirality and length-dependent electron transmission of fullerene-capped chiral carbon nanotubes sandwiched in gold electrodes.

作者信息

Kumar Ameet, Sarkar Sudip, Cho Daeheum

机构信息

Department of Chemistry and Green-Nano Materials Research Center, Kyungpook National University, Daegu 41566, South Korea.

出版信息

Phys Chem Chem Phys. 2024 Jan 24;26(4):3474-3481. doi: 10.1039/d3cp05338e.

Abstract

In order to develop high-performance CNT-based electronic and optoelectronic devices, it is crucial to establish the relationship between the electron transport properties of carbon nanotubes (CNTs) and their structures. In this work, we have investigated the transport properties of chiral (8, ) and (10, ) CNTs sandwiched between two gold electrodes by employing nonequilibrium Green's function (NEGF) combined with density functional theory (DFT). We demonstrate that with the change of chirality the transport property changes, as predicted by the ( - ) rule. The change of length is also considered. Our results show that the electrical conductance of (10, ) CNTs is larger than that of the (8, ) CNTs, due to larger diameter. Furthermore, we found that the (8, 1) chiral CNT does not follow the ( - ) rule in shorter length and it shows metallic behavior. The cohesive energy, wavefunctions of electronic states, and coupling energy calculation indicate that the devices considered in this study are stable. The transmission spectra, current . voltage curves, and transmission eigenchannels provide strong evidence for our findings. Among the (10, ) series, (10, 3) CNT would be the optimal choice for a semiconducting molecular junction device with a significant conductance of 20 μA at 0.8 bias voltage.

摘要

为了开发高性能的基于碳纳米管的电子和光电器件,建立碳纳米管(CNT)的电子输运性质与其结构之间的关系至关重要。在这项工作中,我们通过采用非平衡格林函数(NEGF)结合密度泛函理论(DFT),研究了夹在两个金电极之间的手性(8, )和(10, )碳纳米管的输运性质。我们证明,如( - )规则所预测的,随着手性的变化,输运性质也会改变。还考虑了长度的变化。我们的结果表明,由于直径较大,(10, )碳纳米管的电导大于(8, )碳纳米管的电导。此外,我们发现(8, 1)手性碳纳米管在较短长度时不遵循( - )规则,并且表现出金属行为。内聚能、电子态波函数和耦合能计算表明,本研究中考虑的器件是稳定的。传输光谱、电流-电压曲线和传输本征通道为我们的发现提供了有力证据。在(10, )系列中,(10, 3)碳纳米管将是在0.8偏置电压下具有20 μA显著电导的半导体分子结器件的最佳选择。

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