Precision measurements of the gradient of the Casimir force between ultra clean metallic surfaces at larger separations
arXiv:1911.00703 · doi:10.1103/PhysRevA.100.052511
Abstract
We report precision measurements of the Casimir interaction at larger separation distances between the Au-coated surfaces of a sphere and a plate in ultrahigh vacuum using a much softer cantilever of the dynamic atomic force microscope-based setup and two-step cleaning procedure of the vacuum chamber and test body surfaces by means of UV light and Ar-ion bombardment. Compared to the previously performed experiment, two more measurement sets for the gradient of the Casimir force are provided which confirmed and slightly improved the results. Next, additional measurements have been performed with a factor of two larger oscillation amplitude of the cantilever. This allowed obtaining meaningful results at much larger separation distances. The comparison of the measurement data with theoretical predictions of the Lifshitz theory using the dissipative Drude model to describe the response of Au to the low-frequency electromagnetic field fluctuations shows that this theoretical approach is experimentally excluded over the distances from 250 to 1100nm (i.e., a major step forward has been made as compared to the previous work where it was excluded up to only 820nm). The theoretical approach using the dissipationless plasma model at low frequencies is shown to be consistent with the data over the entire measurement range from 250 to 1300nm. The possibilities to explain these puzzling results are discussed.
26 pages, 8 figures; accepted for publication in Phys. Rev. A; several typos have been corrected in the main text and in the list of references
References in corpus (21)
- 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
- Optical properties of gold films and the Casimir force
- Demonstration of optically modulated dispersion forces
- Demonstration of the Casimir force between ferromagnetic surfaces of a Ni-coated sphere and a Ni-coated plate
- Conductivity of dielectric and thermal atom-wall interaction
- Experiment and theory in the Casimir effect
- Roughness correction to the Casimir force at short separations: Contact distance and extreme value statistics
- Significance of the Casimir force and surface roughness for actuation dynamics of MEMS
- Plasma vs Drude modelling of the Casimir force: beyond the proximity force approximation
- Kelvin probe force microscopy of metallic surfaces used in Casimir force measurements
- On the Casimir entropy for a ball in front of a plane
- Going beyond PFA: a precise formula for the sphere-plate Casimir force
- Low-temperature behavior of the Casimir free energy and entropy of metallic films
- Casimir entropy for magnetodielectrics
- Prospects for Searching Thermal Effects, Non-Newtonian Gravity and Axion-Like Particles: Cannex Test of the Quantum Vacuum
- How to confirm and exclude different models of material properties in the Casimir effect
- Casimir free energy and pressure for magnetic metal films
- Universal experimental test for the role of free charge carriers in thermal Casimir effect within a micrometer separation range
- Apparatus to probe the influence on the Casimir effect of the Mott-Anderson metal-insulator transition in doped semiconductors
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