The Intrinsic Quantum Excitations of Low Temperature Glasses
arXiv:cond-mat/0105307 · doi:10.1103/PhysRevLett.87.195901
Abstract
Several puzzling regularities concerning the low temperature excitations of glasses are quantitatively explained by quantizing domain wall motions of the random first order glass transition theory. The density of excitations agrees with experiment and scales with the size of a dynamically coherent region at , being about 200 molecules. The phonon coupling depends on the Lindemann ratio for vitrification yielding the observed universal relation between phonon wavelength and mean free path . Multilevel behavior is predicted to occur in the temperature range of the thermal conductivity plateau.
4 pages, submitted to PRL
Cited by in corpus (53)
- Theory of Structural Glasses and Supercooled Liquids
- The frustration-based approach of supercooled liquids and the glass transition: a review and critical assessment
- Theory of Aging in Structural Glasses
- The Origin of the Boson Peak and the Thermal Conductivity Plateau in Low Temperature Glasses
- Evidence for interacting two-level systems from the 1/f noise of a superconducting resonator
- 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
- Generalized Tunneling Model for TLS in amorphous materials and its predictions for their dephasing and the noise in superconducting microresonators
- Depletion of two-level systems in ultrastable computer-generated glasses
- Absence of Marginal Stability in a Structural Glass
- Theory of the Structural Glass Transition: A Pedagogical Review
- Internal loss of superconducting resonators induced by interacting two level systems
- Comparison of Static Length-Scales Characterizing the Glass Transition
- Activated events in glasses: the structure of entropic droplets
- Lévy Statistics for Random Single--Molecule Line Shapes in a Glass
- What is moving in silica at 1 K? A computer study of the low-temperature anomalies
- Universal Sound Absorption in Amorphous Solids: A Theory of Elastically Coupled Generic Blocks
- Low temperature universality in disordered solids
- Two-Level Systems in Evaporated Amorphous Silicon
- Revealing the pure confinement effect in glass-forming liquids by dynamic mechanical analysis
- Droplets and the configurational entropy crisis for random first order transitions
- Vibrational density of states and specific heat in glasses from random matrix theory
- Are defect models consistent with the entropy and specific heat of glass-formers?
- Replica theory for fluctuations of the activation barriers in glassy systems
- Thermal origin of quasi-localised excitations in glasses
- Local Properties of the Potential Energy Landscape of a Model Glass: Understanding the Low Temperature Anomalies
- Electronic structure and the glass transition in pnictide and chalcogenide semiconductor alloys. Part II: The intrinsic electronic midgap states
- Tunable non-Fermi liquid phase from coupling to two-level systems
- Understanding the fragile-to-strong transition in silica from microscopic dynamics
- Universal sound absorption in low-temperature glasses
- Charge and momentum transfer in supercooled melts: Why should their relaxation times differ?
- What are the interactions in quantum glasses?
- Impact of jamming criticality on low-temperature anomalies in structural glasses
- Microscopic observation of two-level systems in a metallic glass model
- Solvable models of two-level systems coupled to itinerant electrons: Robust non-Fermi liquid and quantum critical pairing
- Relationship between two-level systems and quasi-localized normal modes in glasses
- Observation of giant two-level systems in a granular superconductor
- Argon milling induced decoherence mechanisms in superconducting quantum circuits
- Electrodynamics of Amorphous Media at Low Temperatures
- Mean-field description for the architecture of low-energy excitations in glasses
- Self-consistent elastic continuum theory of degenerate, equilibrium aperiodic solids
- Glass-like two-level systems in minimally disordered mixed crystals
- Nonuniversality and strongly interacting two-level systems in glasses at low temperatures
- Direct Evidence for a Two-component Tunnelling Mechanism in the Multicomponent Glasses at Low Temperatures
- Experimentally revealing anomalously large dipoles in a quantum-circuit dielectric
- Anomalous low-energy properties in amorphous solids and the interplay of electric and elastic interactions of tunneling two-level systems
- Temperature-driven narrowing of the insulating gap as a precursor of the insulator-to-metal transition: Implications for the electronic structure of solids
- The effect of Aharanov-Bohm phase on the magnetic-field dependence of two-pulse echos in glasses at low temperatures
- The strain gap in a system of weakly and strongly interacting two-level systems
- Dielectric Susceptibility and Heat Capacity of Ultra-Cold Glasses in Magnetic Field
- Ar:N - a non-universal glass
- Thermal cycling -- evidence for a generalized tunneling model and a tool to distinguish noise sources in quantum circuits
- Universal Sound Attenuation in Amorphous Solids at Low-Temperatures
- Universal 2D Soft Nano-Scale Mosaic Structure Theory for Polymers and Colloids