The role of glass dynamics in the anomaly of the dielectric function of solid helium
arXiv:1105.5343 · doi:10.1088/1367-2630/13/11/113024
Abstract
We propose that acousto-optical coupling of the electric field to strain fields around defects in disordered He is causing an increase of the dielectric function with decreasing temperature due to the arrested dynamics of defect excitations. A distribution of such low-energy excitations can be described within the framework of a glass susceptibility of a small volume fraction inside solid He. Upon lowering the temperature the relaxation time of defects diverges and an anomaly occurs in the dielectric function when . Since satisfies the Kramers-Kronig relation, we predict an accompanying peak in the imaginary part of at the same temperature, where the largest change in the amplitude has been seen at fixed frequency. We also discuss recent measurements of the amplitude of the dynamic dielectric function that indicate a low-temperature anomaly similar to the one seen in the resonance frequency of the torsional oscillator and shear modulus experiments.
4 pages, 2 figures
References in corpus (20)
- Low Temperature Shear Modulus Changes in Solid 4-He and Connection to Supersolidity
- Luttinger Liquid in the Core of Screw Dislocation in Helium-4
- Disorder and the Supersolid State of Solid He
- Oscillation Frequency Dependence of Non-Classical Rotation Inertia of Solid He
- Evidence for a Superglass State in Solid 4He
- Observation of non-classical rotational inertia in bulk solid 4He
- Supersolid Helium at High Pressure
- Annealing Effect for Supersolid Fraction in He
- On the origin of the decrease in the torsional oscillator period of solid He4
- A non-superfluid origin of the non-classical rotational inertia in a bulk sample of solid 4He
- Mass flux and solid growth in solid 4He: 60 mK - 700 mK
- Heat capacity peak in solid 4He: Effects of disorder and 3He impurities
- Interplay of Rotational, Relaxational, and Shear Dynamics in Solid 4He
- Two-level systems and mass deficit in quantum solids
- The glassy response of solid He-4 to torsional oscillations
- A glassy contribution to the heat capacity of hcp He solids
- A glass anomaly in the shear modulus of solid He
- The glassy response of double torsion oscillators in solid Helium-4
- A search for disordered (glassy) phase in solid 3He deformed in situ
- Shear modulus in viscoelastic solid He