Physical Review B · 2009 · 60 citations · 24 references
EngineeringGlass-forming LiquidMechanical EngineeringGlass MaterialHeat CapacityGlass-ceramicGlass TransitionThermodynamicsMaterials ScienceCrystalline DefectsPhysicsCrystallographyRelaxed GlassyHigh Temperature MaterialsMetallic GlassApplied PhysicsCondensed Matter PhysicsCrystallized StatesMechanics Of Materials
Low-temperature $(2\text{ }\text{K}\ensuremath{\le}T\ensuremath{\le}350\text{ }\text{K})$ heat capacity and room-temperature shear modulus measurements $(\ensuremath{\nu}=1.4\text{ }\text{MHz})$ have been performed on bulk ${\text{Pd}}_{41.25}{\text{Cu}}_{41.25}{\text{P}}_{17.5}$ in the initial glassy, relaxed glassy, and crystallized states. It has been found that the height of the low-temperature Boson heat capacity peak strongly correlates with the changes in the shear modulus upon high-temperature annealing. It is this behavior that was earlier predicted by the interstitialcy theory, according to which dumbbell interstitialcy defects are responsible for a number of thermodynamic and kinetic properties of crystalline, (supercooled) liquid, and solid glassy states.
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