The Origin of the Boson Peak and the Thermal Conductivity Plateau in Low Temperature Glasses
arXiv:cond-mat/0206194 · doi:10.1073/pnas.252786999
Abstract
We argue that the intrinsic glassy degrees of freedom in amorphous solids giving rise to the thermal conductivity plateau and the ``boson peak'' in the heat capacity at moderately low temperatures are directly connected to those motions giving rise to the two-level like excitations seen at still lower temperatures. These degrees of freedom can be thought of as strongly anharmonic transitions between the local minima of the glassy energy landscape that are accompanied by ripplon-like domain wall motions of the glassy mosaic structure predicted to occur at by the random first order transition theory. The energy spectrum of the vibrations of the mosaic depends on the glass transition temperature, the Debye frequency and the molecular length scale. The resulting spectrum reproduces the experimental low temperature Boson peak. The ``non-universality'' of the thermal conductivity plateau depends on and arises from calculable interactions with the phonons.
4 pages, submitted to PRL
References in corpus (3)
Cited by in corpus (38)
- Theory of Structural Glasses and Supercooled Liquids
- Theory of Aging in Structural Glasses
- Anomalous properties of the acoustic excitations in glasses on the mesoscopic length-scale
- Barrier Softening near the onset of Non-Activated Transport in Supercooled Liquids: Implications for Establishing Detailed Connection between Thermodynamic and Kinetic Anomalies in Supercooled Liquids
- Heat transport in model jammed solids
- Low-energy quasilocalized excitations in structural glasses
- Depletion of two-level systems in ultrastable computer-generated glasses
- Vibrational excitations in systems with correlated disorder
- Perspective: Gardner Physics in Amorphous Solids and Beyond
- Theory of the Structural Glass Transition: A Pedagogical Review
- Pressure dependence of the Boson peak in glasses
- Comparison of Static Length-Scales Characterizing the Glass Transition
- On the analysis of the vibrational Boson peak and low-energy excitations in glasses
- Large Low Temperature Specific Heat in Pyrochlore BiTiO
- Boson-peak vibrational modes in glasses feature hybridized phononic and quasilocalized excitations
- Hydrodynamic finite-size scaling of the thermal conductivity in glasses
- Low-temperature anomalies of a vapor deposited glass
- Vibrational density of states and specific heat in glasses from random matrix theory
- The boson peak in the vibrational spectra of glasses
- Echoes of the glass transition in athermal soft spheres
- Tunable non-Fermi liquid phase from coupling to two-level systems
- Rotational sound in disordered granular materials
- The Glass-like Structure of Globular Proteins and the Boson Peak
- Frequency dependent heat capacity within a kinetic model of glassy dynamics
- Vibrational states and disorder in continuously compressed model glasses
- Charge and momentum transfer in supercooled melts: Why should their relaxation times differ?
- Microscopic observation of two-level systems in a metallic glass model
- Near-field localization of the boson peak on tantalum films for superconducting quantum devices
- Electrodynamics of Amorphous Media at Low Temperatures
- Self-consistent elastic continuum theory of degenerate, equilibrium aperiodic solids
- Sound damping in frictionless granular materials: The interplay between configurational disorder and inelasticity
- Specific heat at low temperatures in quasiplanar molecular crystals: Where do glassy anomalies in minimally disordered crystals come from?
- The effect of Aharanov-Bohm phase on the magnetic-field dependence of two-pulse echos in glasses at low temperatures
- Revealing the Geometrical and Vibrational Properties of the Defects Driving the Boson Peak
- Microstructure and the Boson-peak in thermally-treated In_{x}O films
- Vibrational dynamics and boson peak in a supercooled polydisperse liquid
- Thermal Conductivity of Glass-Forming Liquids
- Quantum structure of glasses and the boson peak: a theory of vibrations