Experimental and theoretical investigation of the thermal effect in the Casimir interaction from graphene
arXiv:2108.07558 · doi:10.1103/PhysRevB.104.085436
Abstract
We present the results of an experiment on measuring the gradient of the Casimir force between an Au-coated hollow glass microsphere and graphene-coated fused silica plate by means of a modified atomic force microscope cantilever based technique operated in the dynamic regime. These measurements were performed in high vacuum at room temperature. The energy gap and the concentration of impurities in the graphene sample used have been measured utilizing scanning tunnelling spectroscopy and Raman spectroscopy, respectively. The measurement results for the gradients of the Casimir force are found to be in a very good agreement with theory using the polarization tensor of graphene at nonzero temperature depending on the energy gap and chemical potential with no fitting parameters. The theoretical predictions of the same theory at zero temperature are experimentally excluded over the measurement region from 250 to 517 nm. We have also investigated a dependence of the thermal correction to the Casimir force gradient on the values of the energy gap, chemical potential, and on the presence of a substrate supporting the graphene sheet. It is shown that the observed thermal effect is consistent in size with that arising for pristine graphene sheets if the impact of real conditions such as nonzero values of the energy gap, chemical potential, and the presence of a substrate is included. Implications of the obtained results to the resolution of the long-standing problems in Casimir physics are discussed. In addition to the paper published previously [M. Liu {\it et al}., Phys. Rev. Lett. {\bf 126}, 206802 (2021)], we present measurement results for the energy gap of the graphene sample, double the experimental data for the Casimir force, and perform a more complete theoretical analysis.
19 pages, 1 table, 9 figures; accepted for publication in Phys. Rev. B
References in corpus (43)
- The electronic properties of graphene
- Chiral tunneling and the Klein paradox in graphene
- Electrochemically Top Gated Graphene: Monitoring Dopants by Raman Scattering
- Measurement of the Optical Conductivity of Graphene
- Optical properties of graphene
- Colloquium: The transport properties of graphene: An introduction
- The optical conductivity of graphene in the visible region of the spectrum
- Scanning Tunneling Spectroscopy of Graphene on Graphite
- Intrinsic and extrinsic corrugation of monolayer graphene deposited on SiO2
- Electronic properties of graphene: a perspective from scanning tunneling microscopy and magneto-transport
- Novel constraints on light elementary particles and extra-dimensional physics from the Casimir effect
- Dynamical polarization, screening, and plasmons in gapped graphene
- Casimir forces in a T operator approach
- The Casimir effect for a sphere and a cylinder in front of plane and corrections to the proximity force theorem
- Halving the Casimir force with conductive oxides
- The Schwinger mechanism and graphene
- Casimir Forces between Compact Objects: I. The Scalar Case
- Influence of random roughness on the Casimir force at small separations
- Evidence for Strain-Induced Local Conductance Modulations in Single-Layer Graphene on SiO2
- Demonstration of the Casimir force between ferromagnetic surfaces of a Ni-coated sphere and a Ni-coated plate
- Retarded interactions in Graphene systems
- Van der Waals and Casimir interactions between two graphene sheets
- Theory of the Casimir interaction for graphene-coated substrates using the polarization tensor and comparison with experiment
- Measurement of the Casimir Force between 0.2 and 8 mum: Experimental Procedures and Comparison with Theory
- Plasma vs Drude modelling of the Casimir force: beyond the proximity force approximation
- Casimir Puzzle and Casimir Conundrum: Discovery and Search for Resolution
- Kelvin probe force microscopy of metallic surfaces used in Casimir force measurements
- Observability of thermal effects in the Casimir interaction from graphene-coated substrates
- Precision measurements of the gradient of the Casimir force between ultra clean metallic surfaces at larger separations
- Origin of large thermal effect in the Casimir interaction between two graphene sheets
- Demonstration of an Unusual Thermal Effect in the Casimir Force from Graphene
- Planar QED at finite temperature and density: Hall conductivity, Berry's phases and minimal conductivity of graphene
- Tuning quantum fluctuations with an external magnetic field: Casimir-Polder interaction between an atom and a graphene sheet
- Going beyond PFA: a precise formula for the sphere-plate Casimir force
- Dynamical Polarizability of Graphene with Spatial Dispersion
- Emending thermal dispersion interactions of Li, Na, K and Rb alkali metal-atoms with graphene in the Dirac model
- Impact of graphene coating on the atom-plate interaction
- An alternative response to the off-shell quantum fluctuations: A step forward in resolution of the Casimir puzzle
- How to observe the giant thermal effect in the Casimir force for graphene systems
- Interaction of a graphene sheet with a ferromagnetic metal plate
- Thermal effect in the Casimir force for graphene and graphene-coated substrates: Impact of nonzero mass gap and chemical potential
- Casimir entropy and nonlocal response functions to the off-shell quantum fluctuations
- The Casimir force, causality and the Gurzhi model
Cited by in corpus (27)
- Theory-experiment comparison for the Casimir force between metallic test bodies: A spatially nonlocal dielectric response
- Casimir effect for magnetic media: Spatially nonlocal response to the off-shell quantum fluctuation
- Twisted bilayered graphenes at magic angles and Casimir interactions: correlation-driven effects
- Casimir-Polder attraction and repulsion between nanoparticles and graphene in out-of-thermal-equilibrium conditions
- Quantum field theoretical framework for the electromagnetic response of graphene and dispersion relations with implications to the Casimir effect
- Premelting and formation of ice due to Casimir-Lifshitz interactions: Impact of improved parameterization for materials
- Experimentum crucis for electromagnetic response of metals to evanescent waves and the Casimir puzzle
- The Casimir effect in graphene systems: Experiment and theory
- Tunable non-additivity in Casimir-Lifshitz force between graphene gratings
- Dispersive interactions between standard and Dirac materials and the role of dimensionality
- Impact of Mass-Gap on the Dispersion Interaction of Nanoparticles with Graphene out of Thermal Equilibrium
- The Casimir Force between Two Graphene Sheets: 2D Fresnel Reflection Coefficients, Contributions of Different Polarizations, and the Role of Evanescent Waves
- Nonequilibrium Casimir-Polder Interaction Between Nanoparticles and Substrates Coated with Gapped Graphene
- On the convergence of the polarization tensor in space-time of three dimensions
- Testing Gravity and Predictions Beyond the Standard Model at Short Distances: The Casimir Effect
- Nonequilibrium Casimir-Polder Force between Nanoparticles and Graphene-Coated Silica Plate: Combined Effect of the Chemical Potential and Mass Gap
- Casimir-Lifshitz force with graphene: theory versus experiment, role of spatial non-locality and of losses
- Impurities in graphene and their influence on the Casimir interaction
- Casimir-Lifshitz force for graphene-covered gratings
- Casimir-Polder Force on Atoms or Nanoparticles from the Gapped and Doped Graphene: Asymptotic Behavior at Large Separations
- Nonequilibrium Casimir pressure for two graphene-coated plates: Quantum field theoretical approach
- Temperature Dependence of the Response Functions of Graphene: Impact on Casimir and Casimi-Polder Forces in and out of Thermal Equilibrium
- Large-Separation Behavior of the Casimir-Polder Force from Real Graphene Sheet Deposited on a Dielectric Substrate
- Comment on "Electric conductivity of graphene: Kubo model versus a nonlocal quantum field theory model (arXiv:2403.02279v3)"
- Normal and lateral Casimir-Lifshitz forces between a nanoparticle and a graphene grating
- Reply to "Comment on "Electric conductivity in graphene: Kubo model versus a nonlocal quantum field theory model"" (ArXiv:2506.10792v2)
- Recent solution to the Casimir puzzle awaits its experimental confirmation