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首页> 外文期刊>Current applied physics: the official journal of the Korean Physical Society >Crystal orbital study on the combined carbon nanowires constructed from linear carbon chains encapsulated in zigzag double-walled carbon nanotubes
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Crystal orbital study on the combined carbon nanowires constructed from linear carbon chains encapsulated in zigzag double-walled carbon nanotubes

机译:曲折双壁碳纳米管中封装的线性碳链构成的复合碳纳米线的晶体轨道研究

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This work has presented first-principle self-consistent field crystal orbital studies of combined carbon nanowires (CNWs) consisted of linear carbon chains encapsulated in zigzag double-walled carbon nanotubes (DWCNTs). The geometrical structures, relative stabilities and electronic properties of CNWs made of DWCNTs and single-walled carbon nanotubes are investigated and compared in details. As adding second outer tube, enhanced stabilities of the CNWs made of DWCNTs are detected from viewpoint of energies. The calculated band structures show that all CNWs studied are metals with zero energy gap. It is found that the atomic density of the carbon chain and the size of the tube are important to modulate the electronic properties of the CNWs. Since chemical bonding is not formed among the constitute parts of CNWs, the interaction among the subsections are analyzed based on orbital hybridization and charge transfer, which both play the leading roles on the energies and band structures of the CNWs. The computed charge carrier mobility of encapsulated carbon chain is much larger than that of the free carbon chain, reaches 10(5)-10(6) cm(2) V-1 at room temperature. The filling carbon chain can be considered as one of the narrowest one-dimensional electronic nanowires covered by outer DWCNT. Moreover, the elastic properties of CNWs are studied based on the results of Young's modulus. (C) 2015 Elsevier B.V. All rights reserved.
机译:这项工作提出了结合碳纳米线(CNW)的第一性原理的自洽场晶体轨道研究,该复合碳纳米线由封装在之字形双壁碳纳米管(DWCNT)中的线性碳链组成。研究并比较了由DWCNT和单壁碳纳米管制成的CNW的几何结构,相对稳定性和电子性能。作为第二外管,从能量的角度检测到由DWCNT制成的CNW的增强的稳定性。计算出的能带结构表明,所研究的所有CNW都是能隙为零的金属。发现碳链的原子密度和管的尺寸对于调节CNW的电子性能很重要。由于在CNW的组成部分之间未形成化学键,因此将基于轨道杂交和电荷转移对子区域之间的相互作用进行分析,这两者在CNW的能量和能带结构中起着主导作用。封装的碳链的计算出的载流子迁移率远远大于游离碳链,在室温下达到10(5)-10(6)cm(2)V-1。填充碳链可被视为被外部DWCNT覆盖的最窄的一维电子纳米线之一。而且,基于杨氏模量的结果研究了CNW的弹性性质。 (C)2015 Elsevier B.V.保留所有权利。

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