Current-induced forces in mesoscopic systems: a scattering matrix approach
Niels Bode, Silvia Viola Kusminskiy, Reinhold Egger, Felix von, Oppen

TL;DR
This paper develops a scattering matrix-based theoretical framework to analyze current-induced forces in nanoelectromechanical systems, revealing how electronic currents influence mechanical vibrations and can induce complex dynamics.
Contribution
It introduces a unified scattering matrix approach to calculate current-induced forces and Langevin dynamics in out-of-equilibrium nanoelectromechanical systems.
Findings
Current-induced forces can destabilize mechanical vibrations.
The formalism includes nonconservative and Lorentz-like forces.
Out-of-equilibrium conditions can lead to limit-cycle dynamics.
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-B\"uttiker 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.…
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