• DocumentCode
    1070625
  • Title

    Luttinger liquid theory as a model of the gigahertz electrical properties of carbon nanotubes

  • Author

    Burke, P.J.

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Univ. of California, CA, USA
  • Volume
    1
  • Issue
    3
  • fYear
    2002
  • fDate
    9/1/2002 12:00:00 AM
  • Firstpage
    129
  • Lastpage
    144
  • Abstract
    Presents a technique to directly excite Luttinger liquid collective modes in carbon nanotubes at gigahertz frequencies. By modeling the nanotube as a nano-transmission line with distributed kinetic and magnetic inductance as well as distributed quantum and electrostatic capacitance, we calculate the complex frequency-dependent impedance for a variety of measurement geometries. Exciting voltage waves on the nano-transmission line is equivalent to directly exciting the yet-to-be observed one-dimensional plasmons, the low energy excitation of a Luttinger liquid. Our technique has already been applied to two-dimensional plasmons and should work well for one-dimensional plasmons. Tubes of length 100 microns must be grown for gigahertz resonance frequencies. Ohmic contact is not necessary with our technique; capacitive contacts can work. Our modeling has applications in potentially terahertz nanotube transistors and RF nanospintronics.
  • Keywords
    Luttinger liquid; capacitance; carbon nanotubes; inductance; magnetoelectronics; nanotube devices; nanowires; plasmons; submillimetre wave transistors; 100 micron; C; Luttinger liquid theory; RF nanospintronics; carbon nanotubes; collective modes; complex frequency-dependent impedance; distributed electrostatic capacitance; distributed kinetic inductance; distributed magnetic inductance; distributed quantum capacitance; gigahertz electrical properties; measurement geometries; nano-transmission line model; one-dimensional plasmons; terahertz nanotube transistors; two-dimensional plasmons; Capacitance measurement; Carbon nanotubes; Electrostatic measurements; Frequency; Impedance measurement; Inductance measurement; Kinetic theory; Plasmons; Quantum capacitance; Solid modeling;
  • fLanguage
    English
  • Journal_Title
    Nanotechnology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1536-125X
  • Type

    jour

  • DOI
    10.1109/TNANO.2002.806823
  • Filename
    1159214