Current-induced forces in mesoscopic systems: a scattering matrix approach
arXiv:1109.6043 · doi:10.3762/bjnano.3.15
Abstract
Nanoelectromechanical systems are characterized by an intimate connection between electronic and mechanical degrees of freedom. Due to the nanoscopic scale, current flowing through the system noticeably impacts the vibrational dynamics of the device, complementing the effect of the vibrational modes on the electronic dynamics. We employ the scattering matrix approach to quantum transport to develop a unified theory of nanoelectromechanical systems out of equilibrium. For a slow mechanical mode, the current can be obtained from the Landauer-Büttiker formula in the strictly adiabatic limit. The leading correction to the adiabatic limit reduces to Brouwer's formula for the current of a quantum pump in the absence of the bias voltage. The principal result of the present paper are scattering matrix expressions for the current-induced forces acting on the mechanical degrees of freedom. These forces control the Langevin dynamics of the mechanical modes. Specifically, we derive expressions for the (typically nonconservative) mean force, for the (possibly negative) damping force, an effective "Lorentz" force which exists even for time reversal invariant systems, and the fluctuating Langevin force originating from Nyquist and shot noise of the current flow. We apply our general formalism to several simple models which illustrate the peculiar nature of the current-induced forces. Specifically, we find that in out of equilibrium situations the current induced forces can destabilize the mechanical vibrations and cause limit-cycle dynamics.
"Applications" section considerably extended. Changes in layout. Version as published
References in corpus (23)
- Molecular Transport Junctions: Vibrational Effects
- Cooling a nanomechanical resonator with quantum back-action
- Franck-Condon blockade and giant Fano factors in transport through single molecules
- Nanomechanical Resonators and Their Applications in Biological/Chemical Detection: Nanomechanics Principles
- Strong coupling between single-electron tunneling and nano-mechanical motion
- Electrical generation and absorption of phonons in carbon nanotubes
- Inelastic electron tunneling via molecular vibrations in single-molecule transistors
- Franck-Condon blockade in suspended carbon nanotube quantum dots
- Theory of the Franck-Condon blockade regime
- Tunneling in suspended carbon nanotubes assisted by longitudinal phonons
- Dictionary between scattering matrix and Keldysh formalisms for quantum transport driven by time-periodic fields
- Scattering theory of current-induced forces in mesoscopic systems
- Quantum nano-electromechanics with electrons, quasiparticles and Cooper pairs: effective bath descriptions and strong feedback effects
- Self-consistent theory of molecular switching
- Laser-like vibrational instability in rectifying molecular conductors
- Non-linear response of molecular junctions: The polaron model revisited
- Semi-classical dynamics of nano-electromechanical systems
- Stochastic dynamics for a single vibrational mode in molecular junctions
- Euler buckling instability and enhanced current blockade in suspended single-electron transistors
- Adiabaticity in semiclassical nanoelectromechanical systems
- Scattering approach to backaction in coherent nanoelectromechanical systems
- Quantum theory of electromechanical noise and momentum transfer statistics
- Cotunneling, current blockade, and backaction forces in nanobeams close to the Euler buckling instability
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