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何成

教授

基本信息 / Basic Information

  • 博士生导师 硕士生导师
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  • 学历: 硕博连读
  • 学位: 博士
  • 学科: 材料科学与工程

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Tuning structures and electron transport properties of ultrathin Cu nanowires by size and bending stress using DFT and DFTB methods

发布时间:2025-04-30
点击次数:
发布时间:
2025-04-30
论文名称:
Tuning structures and electron transport properties of ultrathin Cu nanowires by size and bending stress using DFT and DFTB methods
发表刊物:
RSC advance
摘要:
The electron transport properties of ultrathin Cu nanowires (NWs) with diameters of 0.2–1.0 nm under different bending stresses are reported for potential future application in flexible displays and flexible solar cells. Density functional theory (DFT) and density-functional-based tight-binding (DFTB) approaches have been combined to systematically discover the ballistic transport and diffusive transport of ultrathin Cu NWs at the nanoscale. Our DFT calculations show that with an increase of bending stress (f), the structures of both nonhelical and helical wires become disordered, then exhibit a phase transition and eventually collapse. Therefore, the quantum conduction (G) values are reduced. In addition, as the size of the nanowires increases, the maximum bearable bending stress (fc) reduces. fc of a helical atomic strand is decided by its diameter, while fc of a nonhelical atomic strand is decided by the area of the cross section. Our DFTB calculations reveal that the intermediary atoms are the most important for forming the loop between two electrodes and implementing diffusion transport. Among the seven structures, 6-1b exhibits the best properties, after comprehensively considering the results of quantum transport, diffusive transport and collapse-resistance.
合写作者:
C.He, G.Liu, W.X.Zhang
卷号:
5,22463-22470
页面范围:
22463-22470
是否译文:
发表时间:
2015-02-20