Precision measurements of the zero temperature dielectric constant and density of liquid He
arXiv:2207.08852 · doi:10.1103/PhysRevB.106.214509
Abstract
The resonant frequencies of three-dimensional microwave cavities are explicitly dependent on the dielectric constant of the material filling the cavity, making them an ideal system for probing material properties. In particular, dielectric constant measurements allow one to extract the helium density through the Clausius-Mossotti relation. By filling a cylindrical aluminum cavity with superfluid helium, we make precision measurements of the dielectric constant of liquid He at saturated vapor pressure for range of temperatures 30 -- 300 mK and at pressures of 0-25.0 bar at 30 mK, essentially the zero temperature limit for the properties of He. After reviewing previous measurements, we find systematic discrepancy between low and high frequency determination of the dielectric constant in the zero-temperature limit and moderate discrepancy with previously reported values of pressure-dependent density. Our precision measurements suggest 3D microwave cavities are a promising choice for refining previously measured values in helium, with potential applications in metrology.
10 pages, 9 figures
References in corpus (8)
- Efficient and robust analysis of complex scattering data under noise in microwave resonators
- The dispersion relation of Landau elementary excitations and the thermodynamic properties of superfluid He
- High Quality 3-Dimensional Aluminum Microwave Cavities
- Frequency-dependent polarizability of helium including relativistic effects with nuclear recoil terms
- Circular-Polarization-Dependent Study of Microwave-Induced Conductivity Oscillations in a Two-Dimensional Electron Gas on Liquid Helium
- Atomic microwave-to-optical signal transduction via magnetic-field coupling in a resonant microwave cavity
- Prototype Superfluid Gravitational Wave Detector
- Polymer-loaded three dimensional microwave cavities for hybrid quantum systems