Characteristic properties of the Casimir free energy for metal films deposited on metallic plates
arXiv:1604.06081 · doi:10.1103/PhysRevA.93.042508
Abstract
The Casimir free energy and pressure of thin metal films deposited on metallic plates are considered using the Lifshitz theory and the Drude and plasma model approaches to the role of conduction electrons. The bound electrons are taken into account by using the complete optical data of film and plate metals. It is shown that for films of several tens of nanometers thickness the Casimir free energy and pressure calculated using these approaches differ by hundreds and thousands percent and can be easily discriminated experimentally. According to our results, the free energy of a metal film does not vanish in the limiting case of ideal metal if the Drude model approach is used in contradiction with the fact that the fluctuating field cannot penetrate in its interior. Numerical computations of the Casimir free energy and pressure of Ag and Au films deposited on Cu and Al plates have been performed using both theoretical approaches. It is shown that the free energy of a film can be both negative and positive depending on the metals used. For a Au film on a Ag plate and vice versa the Casimir energy of a film changes its sign with increasing film thickness. Applications of the obtained results for resolving the Casimir puzzle and the problem of stability of thin films are discussed.
19 pages, 6 figures
References in corpus (23)
- Measurement of the Temperature Dependence of the Casimir-Polder Force
- Novel constraints on light elementary particles and extra-dimensional physics from the Casimir effect
- Control of the Casimir force by the modification of dielectric properties with light
- Influence of random roughness on the Casimir force at small separations
- Anomalies in electrostatic calibrations for the measurement of the Casimir force in a sphere-plane geometry
- Demonstration of the Casimir force between ferromagnetic surfaces of a Ni-coated sphere and a Ni-coated plate
- Thermal corrections to the Casimir effect
- Experimental test for the conductivity properties from the Casimir force between metal and semiconductor
- Casimir-Polder interaction between an atom and a cavity wall under the influence of real conditions
- Conductivity of dielectric and thermal atom-wall interaction
- Experiment and theory in the Casimir effect
- Kramers-Kronig relations for plasma-like permittivities and the Casimir force
- Comment on "Anomalies in electrostatic calibration for the measurement of the Casimir force in a sphere-plane geometry"
- Casimir-Polder force between an atom and a dielectric plate: thermodynamics and experiment
- Universal behavior of dispersion forces between two dielectric plates in the low-temperature limit
- Kelvin probe force microscopy of metallic surfaces used in Casimir force measurements
- Apparatus for measuring the thermal Casimir force at large distances
- Casimir entropy for magnetodielectrics
- Casimir free energy of metallic films: Discriminating between Drude and plasma model approaches
- Isolelectronic apparatus to probe the thermal Casimir force
- Casimir Force between Atomically Thin Gold Films
- How to confirm and exclude different models of material properties in the Casimir effect
- The van der Waals and Casimir energy of anisotropic atomically thin metallic films
Cited by in corpus (10)
- Low-temperature behavior of the Casimir free energy and entropy of metallic films
- Fluctuation-induced free energy of thin peptide films
- Casimir free energy of dielectric films: Classical limit, low-temperature behavior and control
- Nernst heat theorem for the thermal Casimir interaction between two graphene sheets
- Casimir free energy and pressure for magnetic metal films
- Effect of increased stability of peptide-based coatings in the Casimir regime via nanoparticle doping
- Universal experimental test for the role of free charge carriers in thermal Casimir effect within a micrometer separation range
- Casimir pressure in peptide films on metallic substrates: Change of sign via graphene coating
- Attractive and repulsive fluctuation-induced pressure in peptide films deposited on semiconductor substrates
- The Casimir free energy of peptide films on a silicon substrate: Impact of dielectric-to-metal transition in silicon and nanoparticles in peptide