Self Oscillations and Cooling of Carbon Based NEMS Devices
Abstract
We investigate the electromechanical properties of a number of system geometries featuring a doubly clamped Carbon Nanotube or Graphene sheet with a deflection sensitive resistance and an electronic feedback in the form of a Lorentz force or an electrostatic attraction. The nanotube is subjected to a constant current- or voltage bias and it is shown that when the electro-mechanical coupling exceeds a certain critical value the system becomes unstable to self-excitations of the mechanical vibrations accompanied by oscillations in the voltage drop and current through the nanotube. The critical value typically depends on the quality factor and some function of the mechanical and electronic relaxation times. We discuss applications of the devices as active tunable radiofrequency oscillators and for cooling.
Parts of work
Magnetomotive Instability and Generation of Mechanical Vibrations in Suspended
Semiconducting Carbon Nanotubes
A. Nordenfelt, Y. Tarakanov, L. Y. Gorelik, R. I. Shekhter, M. Jonson
New Journal of Physics 12 (2010) 123013
::doi::10.1088/1367-2630/12/12/123013 Magnetomotive Cooling and Excitation of Carbon Nanotube Oscillations under Voltage
Bias
A. Nordenfelt
Cent. Eur. J. Phys., 9(5), (2011), 1288-1293
::doi::10.2478/s11534-011-0044-1 Spin-controlled nanomechanics induced by single-electron tunneling
D. Radic, A. Nordenfelt, A.M. Kadigrobov, R. I. Shekhter, M. Jonson, L. Y. Gorelik
PRL 107, 236802 (2011)
::doi::10.1103/PhysRevLett.107.236802 Selective self-excitation of higher vibrational modes of graphene nano-ribbons and carbon
nanotubes through magnetomotive instability
A. Nordenfelt
arXiv:1112.0921v1
Degree
Doctor of Philosophy
University
Göteborgs universitet. Naturvetenskapliga fakulteten
Institution
Department of Physics ; Institutionen för fysik
Disputation
Fredagen den 4e maj 2012, kl 13.00, FB-salen, Fysikgården 4
Date of defence
2012-05-04
anders.nordenfelt@physics.gu.se
Date
2012-04-10Author
Nordenfelt, Anders
Keywords
nano electro-mechanics
carbon nanotubes
Publication type
Doctoral thesis
ISBN
978-91-628-8460-4
Language
eng