Shandong Key Laboratory of Medical Physics and Image Processing & Shandong Provincial Engineering and Technical Center of Light Manipulations, School of Physics and Electronics, Shandong Normal University, Jinan, 250358, China.
Phys Chem Chem Phys. 2023 Jan 27;25(4):2926-2934. doi: 10.1039/d2cp04727f.
Carbon nanotubes (CNTs) are considered to be promising candidates for fabricating nanowires, due to their stable quasi-one-dimensional structure. Controlling the electronic transport properties is one of the most vital issues for molecular nanowires. Herein, using density functional theory combined with nonequilibrium Green's function method, we systematically investigate the current evolution of (4, 4) single-walled CNT based nanowires in squashing processes. When the CNTs are squashed by applying different pressure along the radial direction, a negative correlation can be found between the electrical conductance of the nanowire and the pressure. Besides, the response of the nano junction current to pressure is influenced by the squashing direction. Not only does the geometric structure show symmetry breaking in the specific squashing direction, which causes the CNT electrodes to change from conductors to semiconductors, but also obvious π stacking behavior can be witnessed in this squashing direction. More intriguingly, because the current of the nano junction can be completely cut off by squashing the CNTs, a significant switching behavior with the on/off ratio of up to 10 is obtained at low bias voltages. The underlying mechanisms for these phenomena are revealed by the analysis of the band structures, transmission spectra, frontier molecular orbitals and transmission pathways. These electronic transport properties make CNT a promising candidate for realizing conductance controllable nano devices.
碳纳米管(CNTs)由于其稳定的准一维结构,被认为是制造纳米线的有前途的候选材料。控制电子输运性质是分子纳米线最重要的问题之一。在这里,我们使用密度泛函理论结合非平衡格林函数方法,系统地研究了(4,4)单壁 CNT 纳米线在压缩过程中的电流演化。当 CNT 沿径向施加不同压力时,纳米线的电导率与压力之间存在负相关关系。此外,纳米结电流对压力的响应受到压缩方向的影响。不仅在特定的压缩方向上,几何结构表现出对称破缺,导致 CNT 电极从导体变为半导体,而且在这个压缩方向上还可以观察到明显的π堆积行为。更有趣的是,由于通过压缩 CNT 可以完全切断纳米结的电流,因此在低偏压下可以获得高达 10 的导通/关断比的显著开关行为。通过对能带结构、传输谱、前沿分子轨道和传输途径的分析,揭示了这些现象的潜在机制。这些电子输运性质使 CNT 成为实现可控制导纳米器件的有前途的候选材料。