Control of the Casimir force by the modification of dielectric properties with light
arXiv:0707.4390 · doi:10.1103/PhysRevB.76.035338
Abstract
The experimental demonstration of the modification of the Casimir force between a gold coated sphere and a single-crystal Si membrane by light pulses is performed. The specially designed and fabricated Si membrane was irradiated with 514 nm laser pulses of 5 ms width in high vacuum leading to a change of the charge-carrier density. The difference in the Casimir force in the presence and in the absence of laser radiation was measured by means of an atomic force microscope as a function of separation at different powers of the absorbed light. The total experimental error of the measured force differences at a separation of 100 nm varies from 10 to 20% in different measurements. The experimental results are compared with theoretical computations using the Lifshitz theory at both zero and laboratory temperatures. The total theoretical error determined mostly by the uncertainty in the concentration of charge carriers when the light is incident is found to be about 14% at separations less than 140 nm. The experimental data are consistent with the Lifshitz theory at laboratory temperature, if the static dielectric permittivity of high-resistivity Si in the absence of light is assumed to be finite. If the dc conductivity of high-resistivity Si in the absence of light is included into the model of dielectric response, the Lifshitz theory at nonzero temperature is shown to be experimentally inconsistent at 95% confidence. The demonstrated phenomenon of the modification of the Casimir force through a change of the charge-carrier density is topical for applications of the Lifshitz theory to real materials in fields ranging from nanotechnology and condensed matter physics to the theory of fundamental interactions.
30 pages, 10 figures, 2 tables
References in corpus (12)
- Measurement of the Temperature Dependence of the Casimir-Polder Force
- Effect of the Casimir-Polder force on the collective oscillations of a trapped Bose-Einstein condensate
- The Casimir effect for a sphere and a cylinder in front of plane and corrections to the proximity force theorem
- Worldline algorithms for Casimir configurations
- Demonstration of optically modulated dispersion forces
- Lifshitz-type formulas for graphene and single-wall carbon nanotubes: van der Waals and Casimir interations
- Demonstration of the difference Casimir force for samples with different charge carrier densities
- 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
- Van der Waals interaction between a microparticle and a single-wall carbon nanotube
- Kramers-Kronig relations for plasma-like permittivities and the Casimir force
- Universal behavior of dispersion forces between two dielectric plates in the low-temperature limit
Cited by in corpus (59)
- Halving the Casimir force with conductive oxides
- Casimir Forces between Compact Objects: I. The Scalar Case
- Measurement of non-monotonic Casimir forces between silicon nanostructures
- Fluctuation induced quantum interactions between compact objects and a plane mirror
- Conductivity of dielectric and thermal atom-wall interaction
- Comment on "Anomalies in electrostatic calibration for the measurement of the Casimir force in a sphere-plane geometry"
- Thermal Casimir effect in ideal metal rectangular boxes
- Application of the Lifshitz theory to poor conductors
- Lifshitz theory of atom-wall interaction with applications to quantum reflection
- Casimir-Polder force between an atom and a dielectric plate: thermodynamics and experiment
- Experimental procedures for precision measurements of the Casimir force with an Atomic Force Microscope
- Casimir Puzzle and Casimir Conundrum: Discovery and Search for Resolution
- Problems in the theory of thermal Casimir force between dielectrics and semiconductors
- Recent Developments in the Casimir Effect
- Control of the Casimir Force Using Semiconductor Test Bodies
- Precision measurements of the gradient of the Casimir force between ultra clean metallic surfaces at larger separations
- Generalized plasma-like permittivity and thermal Casimir force between real metals
- Magnetic materials and the problem of thermal Casimir force
- The Casimir effect in the nanoworld
- New approach to the thermal Casimir force between real metals
- Nonmonotonic effects of parallel sidewalls on Casimir forces between cylinders
- Van der Waals and Casimir interactions between atoms and carbon nanotubes
- Impact of magnetic nanoparticles on the Casimir pressure in three-layer systems
- Thermal effect in the Casimir force for graphene and graphene-coated substrates: Impact of nonzero mass gap and chemical potential
- Casimir and Casimir-Polder Forces in Graphene Systems: Quantum Field Theoretical Description and Thermodynamics
- Next generation design and prospects for CANNEX
- Optimal estimation of time-dependent gravitational fields with quantum optomechanical systems
- Casimir entropy for magnetodielectrics
- A generalized Kramers-Kronig transform for Casimir effect computations
- Measurement of the Casimir force with a ferrule-top sensor
- Nernst heat theorem for the thermal Casimir interaction between two graphene sheets
- Possibility to measure thermal effects in the Casimir force
- Casimir and van der Waals forces: Advances and problems
- Casimir free energy and pressure for magnetic metal films
- Constraints on non-Newtonian gravity and light elementary particles from measurements of the Casimir force by means of dynamic AFM
- How to confirm and exclude different models of material properties in the Casimir effect
- On the Casimir effect between superconductors
- The Nernst heat theorem for an atom interacting with graphene: Dirac model with nonzero energy gap and chemical potential
- Constraining modified gravity with quantum optomechanics
- Current status of the problem of thermal Casimir force
- Fluctuation-induced Interactions in Micro- and Nano-systems: Survey of Some Basic Results
- Casimir force calculations near the insulator-conductor transition in gold thin films
- Casimir experiments showing saturation effects
- Casimir-Polder Interaction of an Atom with a Cavity Wall Made of Phase-Change Material out of Thermal Equilibrium
- The locality of surface interactions on colloidal probes
- Universal experimental test for the role of free charge carriers in thermal Casimir effect within a micrometer separation range
- Something Can Come of Nothing: Surface Approaches to Quantum Fluctuations and the Casimir Force
- Anharmonic particles: suppressing van der Waals forces by an external field
- Apparatus to probe the influence on the Casimir effect of the Mott-Anderson metal-insulator transition in doped semiconductors
- Casimir effect in a dilute Bose gas in canonical ensemble within improved Hartree-Fock approximation
- Attractive and repulsive fluctuation-induced pressure in peptide films deposited on semiconductor substrates
- Electrically switchable Casimir forces using transparent conductive oxides
- Effects of phase transitions in devices actuated by the electromagnetic vacuum force
- Normal and lateral Casimir force: Advances and prospects
- Saturation effects in experiments on the thermal Casimir effect
- Justification of the symmetric damping model of the dynamical Casimir effect in a cavity with a semiconductor mirror
- The Casimir free energy of peptide films on a silicon substrate: Impact of dielectric-to-metal transition in silicon and nanoparticles in peptide
- Comparison of the Lifshitz Theory Using the Nonconventional Fit of Response Functions with Precise Measurements of the Casimir Force
- Impact of surface roughness on the stability of nanoelectromechanical pressure sensors in the Casimir regime