Proposal to measure the Casimir Effect Across the Superconducting Transition
arXiv:2502.04950 · doi:10.1103/PhysRevB.111.174512
Abstract
The influence of the superconducting transition on the Casimir effect remains experimentally elusive. We propose a novel approach to address this challenge, exploiting the first-order superconducting transition induced in a thick film by a parallel magnetic field. Our calculations for a Au sphere opposite a Pb film, based on the Mattis-Bardeen theory, predict a jump in the Casimir force across the transition. By periodically modulating the magnetic field, we induce a corresponding modulation of the Casimir force that should be readily detectable with existing micro-torsional oscillator technology, opening a promising pathway to finally observe the long-sought Casimir-superconductivity coupling. A successful measurement of this effect would provide crucial insights into the fundamental nature of the Casimir force and its interaction with macroscopic quantum phenomena.
5 pages, 4 encapsulated figures
References in corpus (6)
- Measurement of the Casimir Force between 0.2 and 8 mum: Experimental Procedures and Comparison with Theory
- Casimir effect in a superconducting cavity and the thermal controversy
- Plasma vs Drude modelling of the Casimir force: beyond the proximity force approximation
- Low noise cryogenic system for the measurement of Casimir energy in rigid cavities
- On the Casimir effect between superconductors
- Quantum zero point electromagnetic energy difference between the superconducting and the normal phase in a HTc superconducting metal bulk sample