Measurement of the Casimir Force between 0.2 and 8 mum: Experimental Procedures and Comparison with Theory
arXiv:2104.03857 · doi:10.3390/universe7040093
Abstract
We present results on the determination of the differential Casimir force between an Au-coated sapphire sphere and the top and bottom of Au-coated deep silicon trenches performed by means of the micromechanical torsional oscillator in the range of separations from 0.2 to 8 $\upmu$m. The random and systematic errors in the measured force signal are determined at the 95\% confidence level and combined into the total experimental error. The role of surface roughness and edge effects is investigated and shown to be negligibly small. The distribution of patch potentials is characterized by Kelvin probe microscopy, yielding an estimate of the typical size of patches, the respective r.m.s. voltage and their impact on the measured force. A comparison between the experimental results and theory is performed with no fitting parameters. For this purpose, the Casimir force in the sphere-plate geometry is computed independently on the basis of first principles of quantum electrodynamics using the scattering theory and the gradient expansion. In doing so, the frequency-dependent dielectric permittivity of Au is found from the optical data extrapolated to zero frequency by means of the plasma and Drude models. It is shown that the measurement results exclude the Drude model extrapolation over the region of separations from 0.2 to 4.8~$\upmu$m, whereas the alternative extrapolation by means of the plasma model is experimentally consistent over the entire measurement range. A discussion of the obtained results is provided.
36 pages, 16 figures
References in corpus (17)
- Novel constraints on light elementary particles and extra-dimensional physics from the Casimir effect
- The Casimir effect within scattering theory
- The Casimir effect for a sphere and a cylinder in front of plane and corrections to the proximity force theorem
- Demonstration of the Casimir force between ferromagnetic surfaces of a Ni-coated sphere and a Ni-coated plate
- Experimental test for the conductivity properties from the Casimir force between metal and semiconductor
- Casimir energy between a plane and a sphere in electromagnetic vacuum
- Fluctuation induced quantum interactions between compact objects and a plane mirror
- 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
- Precision measurements of the gradient of the Casimir force between ultra clean metallic surfaces at larger separations
- Going beyond PFA: a precise formula for the sphere-plate Casimir force
- Electrostatic patch effects in Casimir force experiments performed in the sphere-plane geometry
- An alternative response to the off-shell quantum fluctuations: A step forward in resolution of the Casimir puzzle
- The derivative expansion approach to the interaction between close surfaces
- Classical Casimir interaction in the plane-sphere geometry
- Plane-wave approach to the exact van der Waals interaction between colloid particles
- Classical Casimir interaction of perfectly conducting sphere and plate
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