Vacuum-selected timescales in driven Josephson systems
Sebastian Allende, David Galvez-Poblete

TL;DR
This paper shows how high-frequency driving can control the intrinsic timescale of Josephson junctions by dynamically selecting a vacuum state, effectively creating a tunable Josephson clock.
Contribution
It introduces a method to control Josephson timescales via dynamical vacuum selection using high-frequency drives, a novel approach in Josephson physics.
Findings
The Josephson plasma frequency can be tuned by vacuum selection.
High-frequency drives reshape the effective Josephson potential.
A vacuum-controlled Josephson clock principle is established.
Abstract
In this work, we demonstrate that the intrinsic timescale of a Josephson junction can be controlled through dynamical vacuum selection. By applying a Kapitza-like high-frequency drive to the system, the effective Josephson potential is reshaped, allowing for the stabilization of inphase or antiphase configuration. As a result, the Josephson plasma frequency, that is, the clock frequency of the junction, becomes a tunable property of the selected vacuum. Our findings establish a vacuum-controlled Josephson clock principle, in which the dynamical vacuum acts as an internal reference that fixes the operational timescale of Josephson oscillations, rather than this scale being imposed externally.
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Taxonomy
TopicsQuantum Mechanics and Non-Hermitian Physics · Quantum Information and Cryptography · Mechanical and Optical Resonators
