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- W4283726110 abstract "The crystallization of amorphous solids impacts fields ranging from inorganic crystal growth to biophysics. Promoting or inhibiting nanoscale epitaxial crystallization and selecting its final products underpin applications in cryopreservation, semiconductor devices, oxide electronics, quantum electronics, structural and functional ceramics, and advanced glasses. As precursors for crystallization, amorphous solids are distinguished from liquids and gases by the comparatively long relaxation times for perturbations of the mechanical stress and for variations in composition or bonding. These factors allow experimentally controllable parameters to influence crystallization processes and to drive materials toward specific outcomes. For example, amorphous precursors can be employed to form crystalline phases, such as polymorphs of Al2O3, VO2, and other complex oxides, that are not readily accessible via crystallization from a liquid or through vapor-phase epitaxy. Crystallization of amorphous solids can further be guided to produce a desired polymorph, nanoscale shape, microstructure, or orientation of the resulting crystals. These effects enable advances in applications in electronics, magnetic devices, optics, and catalysis. Directions for the future development of the chemical physics of crystallization from amorphous solids can be drawn from the structurally complex and nonequilibrium atomic arrangements in liquids and the atomic-scale structure of liquid-solid interfaces." @default.
- W4283726110 created "2022-07-01" @default.
- W4283726110 creator A5026910801 @default.
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- W4283726110 creator A5080658211 @default.
- W4283726110 creator A5082434844 @default.
- W4283726110 creator A5088916558 @default.
- W4283726110 date "2022-09-08" @default.
- W4283726110 modified "2023-10-03" @default.
- W4283726110 title "Guiding epitaxial crystallization of amorphous solids at the nanoscale: Interfaces, stress, and precrystalline order" @default.
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