期刊文献+

First-principles study of metallic carbon nanotubes with boron/nitrogen co-doping 被引量:1

First-principles study of metallic carbon nanotubes with boron/nitrogen co-doping
下载PDF
导出
摘要 Using the first-principles calculations, we investigate the electronic band structure and the quantum transport properties of metallic carbon nanotubes (MCNTs) with B/N pair co-doping. The results about formation energy show that the B/N pair co-doping configuration is a most stable structure. We find that the electronic structure and the transport properties are very sensitive to the doping concentration of the B/N pairs in MCNTs, where the energy gaps increase with doping concentration increasing both along the tube axis and around the tube, because the mirror symmetry of MCNT is broken by doping B/N pairs. In addition, we discuss conductance dips of the transmission spectrum of doped MCNTs. These unconventional doping effects could be used to design novel nanoelectronic devices. Using the first-principles calculations, we investigate the electronic band structure and the quantum transport properties of metallic carbon nanotubes (MCNTs) with B/N pair co-doping. The results about formation energy show that the B/N pair co-doping configuration is a most stable structure. We find that the electronic structure and the transport properties are very sensitive to the doping concentration of the B/N pairs in MCNTs, where the energy gaps increase with doping concentration increasing both along the tube axis and around the tube, because the mirror symmetry of MCNT is broken by doping B/N pairs. In addition, we discuss conductance dips of the transmission spectrum of doped MCNTs. These unconventional doping effects could be used to design novel nanoelectronic devices.
出处 《Chinese Physics B》 SCIE EI CAS CSCD 2011年第1期541-547,共7页 中国物理B(英文版)
基金 Project supported by the National Natural Science Foundation of China(Grant Nos.10325415 and 50504017) the Natural Science Foundation of Hunan Province,China(Grant No.07JJ3102) the Scientific Research Fund of Hunan Provincial Education Department,China(Grant No.10C1171) the Science Development Foundation of Central South University,China(Grant Nos.08SDF02 and 09SDF09)
关键词 metallic carbon nanotube B/N pairs co-doping energy gap FIRST-PRINCIPLES metallic carbon nanotube, B/N pairs co-doping, energy gap, first-principles
  • 相关文献

参考文献30

  • 1Iijima S 1991 Nature 354 56.
  • 2Ni M Y, Wang X L and Zeng Z 2009 Chin. Phys. B 18 357.
  • 3LeMieux M C, Roberts M, Barman S, Jin Y W, Kim J M and Bao Z 2008 Science 321 101.
  • 4Mei L W, Zhang Z H and Ding K H 2009 Acta Phys. Sin. 58 1971 (in Chinese).
  • 5Liu X Y, Wang C Y, Tang Y J, Sun W G, Wu W D, Zhang H Q, Liu M, Yuan L and Xu J J 2009 Acta Phys. Sin. 58 1126 (in Chinese).
  • 6Chen G D, Wang L D, An B, Yang M, Cao D C and Liu G Q 2009 Acta Phys. Sin. 58 1190 (in Chinese).
  • 7Javey A, Guo J, Wang Q, Lundstrom M and Dai H G 2003 Nature 424 654.
  • 8Park J Y 2007 Nanotechnology 18 095202.
  • 9Qiao L, Wang C, Qu C Q, Zeng Y, Yu S S, Hu X Y, Zheng W T and Jiang Q 2009 Diam. Relat. Mater. 18 657.
  • 10Chopra S, McGuire K, Gothard N, Rao A M and Pham A 2003 Appl. Phys. Lett. 83 2280.

同被引文献24

  • 1KELLY T R, SILVA H D, SILVA R A. Unidirectional rotary motion in a molecular system [J]. Nature, 1999, 401: 150-152.
  • 2CHEN J, REED M A, RAWLETT A M, TOUR J M. Large on-off ratios and negative differential resistance in a molecular electronic device [J]. Science, 1999, 286: 1550-1552.
  • 3CHEN J, WANG W, REED M A, RAWLETT A M, PRICE D W, TOUR J M. Room-temperature negative differential resistance in nanoscale molecular junctions [J]. Applied Physics Letters, 2000, 77(8): 1224-1226.
  • 4GITTINS D I, BETHELL D, SCHIFFRIN D J, NICHOLS R J. A nanometre-scale electronic switch consisting of a metal cluster and redox-addressable groups [J]. Nature, 2000, 408: 67-69.
  • 5VENTRA M D, KIM S G, PANTELIDES S T, LANG N D. Temperature effects on the transport properties of molecules [J]. Physical Review Letters, 2001, 86(2): 288-291.
  • 6LUO Yi, WANG Chuan-kui, FU Ying. Effects of chemical and physical modifications on the electronic transport properties of molecular junctions [J]. Journal of Chemical Physics, 2002, 117(22): 10283-10290.
  • 7SEMINARIO J M, ZACARIAS A G, TOUR J M. Theoretical study of a molecular resonant tunneling diode [J]. Journal of the American Chemical Society, 2000, 122(13): 3015-3020.
  • 8CORNIL J, KARZAZI Y, BREDAS J L. Negative differential resistance in phenylene ethynylene oligomers [J]. Joumal of the American Chemical Society, 2002, 124(14): 3516-3517.
  • 9TAYLOR J, BRANDBYGE M, STOKBRO K. Conductance switching in a molecular device: The role of side groups and intermolecular interactions [J]. Physical Review B, 2003, 68: R121101-1-4.
  • 10LONG Meng-qiu, CHEN Ke-qiu, WANG Ling-ling, ZOU B S, SHUAI Z. Negative differential resistance induced by intermolecular interaction in a bimolecular device [J]. Applied Physics Letters, 2007 91: 233512-1-4.

引证文献1

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部