4.8 Article

Highly Conductive Boron Nanotubes: Transport Properties, Work Functions, and Structural Stabilities

期刊

ACS NANO
卷 5, 期 6, 页码 4997-5005

出版社

AMER CHEMICAL SOC
DOI: 10.1021/nn201099a

关键词

nanotubes; boron; structural stability; electronic properties; work function; ballistic transport; ab initio calculations

资金

  1. DFG [KU 2347/2-1]
  2. University of Bremen [ZF 01/120/06]
  3. South Korean Ministry of Education, Science, and Technology
  4. WCU ITCE [R31-2008-000-10100-0]

向作者/读者索取更多资源

The transport properties, work functions, electronic structure, and structural stability of boron nanotubes with different lattice structures, radii, and chiralities are investigated theoretically. As the atomic structure of boron nanotubes and the related sheets is still under debate, three probable structural classes (nanotubes derived from the alpha-sheet, the buckled triangular sheet, and the distorted hexagonal sheet) are considered. For comparison with recent transport measurements U. Mater. Chem. 2010,20, 21971, the intrinsic conductance of ideal nanotubes with large diameters (D approximate to 10 nm) is determined. All considered boron nanotubes are highly conductive, Irrespective of their lattice structures and chiralities, and they have higher conductivities than carbon nanotubes. Furthermore, the work functions of the three sheets and the corresponding large-diameter nanotubes are determined. It is found that the value of the nanotubes obtained from the alpha-sheet agrees well with the experiment. This indirectly shows that the atomic structure of boron nanotubes is related to the alpha-sheet. The structural stability of nanotubes with diameters > 2 nm approaches that of the corresponding boron sheets, and alpha-sheet nanotubes are the most stable ones. However, for smaller diameters the relative stabilities change significantly, and for diameters < 0.5 nm the most stable structures are zigzag nanotubes of the buckled triangular sheet. For structures related to the distorted hexagonal sheet the most stable nanotube is discovered to have a diameter of 0.39 nm.

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