The Effect of Forcing on Vacuum Radiation
Katherine Jones-Smith, Harsh Mathur, Ashton Lowenstein

TL;DR
This paper investigates how combined parametric and classical forcing influences vacuum radiation, revealing complex quantum interference effects and displacement behaviors in driven quantum oscillators with implications for experimental physics.
Contribution
It introduces a detailed analysis of vacuum radiation under simultaneous parametric and classical forcing, highlighting the resulting quantum interference and displacement phenomena.
Findings
Displacement is influenced by the timing of force application relative to parametric drive.
Oscillatory displacement behavior depends on the time lag and drive strength.
Displacement responds to specific Fourier components of the force spectrum.
Abstract
Vacuum radiation has been the subject of theoretical study in both cosmology and condensed matter physics for many decades. Recently there has been impressive progress in experimental realizations as well. Here we study vacuum radiation when a field mode is driven both parametrically and by a classical source. We find that in the Heisenberg picture the field operators of the mode undergo a Bogolyubov transformation combined with a displacement, in the Schr\"odinger picture the oscillator evolves from the vacuum to a squeezed coherent state. Whereas the Bogolyubov transformation is the same as would be obtained if only the parametric drive were applied the displacement is determined by both the parametric drive and the force. If the force is applied well after the parametric drive then the displacement is the same as would be obtained by the action of the force alone and it is…
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Taxonomy
TopicsQuantum Electrodynamics and Casimir Effect · Mechanical and Optical Resonators · Advanced Thermodynamics and Statistical Mechanics
