Crystallization of liquid antimony has been studied at 600 K using six density functional/molecular dynamics simulations with up to 882 atoms and three scenarios: one completely disordered sample that did not crystallize even after 570 ps, four with fixed crystalline slab templates, and one with a fixed crystalline seed. Crystallization proceeded layer-by-layer in most cases and was rapid (∼36 m/s) with templates and somewhat slower with the seed. The seed simulation shows an unusual percolation asymmetry where the crystallite grows faster in the direction normal to the zigzag planes. Changes in pair distribution functions, bond angle distributions, ring statistics, nearest-neighbor distances, and cavity volumes were monitored. Diffusion pl...
Phase-change material Sc0.2Sb2Te3 (SST) can remarkably boost the writing speed of memory devices due...
Despite its fundamental and technological importance, a microscopic understanding of the crystalliza...
Phase-change optical memories are based on the astonishingly rapid nanosecond-scale crystallization ...
Three extensive density functional/molecular dynamics simulations of the crystallization of amorphou...
Crystallization of amorphous Ge[subscript 2]Sb[subscript 2]Te[subscript 5] (GST) has been studied us...
Early stages of nucleus-driven crystallization of the prototype phase change material Ge2Sb2Te5 have...
Elemental antimony (Sb) has been carried out recently as a phase-change material to overcome composi...
Crystallization of amorphous Ge2Sb2Te5 (GST) has been studied using four extensive (460 atoms, up to...
Density functional/molecular dynamics simulations have been performed on liquid antimony (588 atoms ...
Density functional/molecular dynamics simulations have been performed on liquid antimony (588 atoms ...
Thanks to their outstanding physical properties, phase-change materials (PCM) are considered as one ...
Phase change materials are highly important for technological applications in data storage. This wor...
Ge2Sb2Te5 (GST) is an important phase-change material used in optical and electronic memory devices....
The as-deposited (AD) amorphous structure of the prototype phase change material Ge2Sb2Te5 (GST-225)...
Large scale Molecular Dynamics simulations of 65 systems with N = 80 000 Lennard–Jones particles at ...
Phase-change material Sc0.2Sb2Te3 (SST) can remarkably boost the writing speed of memory devices due...
Despite its fundamental and technological importance, a microscopic understanding of the crystalliza...
Phase-change optical memories are based on the astonishingly rapid nanosecond-scale crystallization ...
Three extensive density functional/molecular dynamics simulations of the crystallization of amorphou...
Crystallization of amorphous Ge[subscript 2]Sb[subscript 2]Te[subscript 5] (GST) has been studied us...
Early stages of nucleus-driven crystallization of the prototype phase change material Ge2Sb2Te5 have...
Elemental antimony (Sb) has been carried out recently as a phase-change material to overcome composi...
Crystallization of amorphous Ge2Sb2Te5 (GST) has been studied using four extensive (460 atoms, up to...
Density functional/molecular dynamics simulations have been performed on liquid antimony (588 atoms ...
Density functional/molecular dynamics simulations have been performed on liquid antimony (588 atoms ...
Thanks to their outstanding physical properties, phase-change materials (PCM) are considered as one ...
Phase change materials are highly important for technological applications in data storage. This wor...
Ge2Sb2Te5 (GST) is an important phase-change material used in optical and electronic memory devices....
The as-deposited (AD) amorphous structure of the prototype phase change material Ge2Sb2Te5 (GST-225)...
Large scale Molecular Dynamics simulations of 65 systems with N = 80 000 Lennard–Jones particles at ...
Phase-change material Sc0.2Sb2Te3 (SST) can remarkably boost the writing speed of memory devices due...
Despite its fundamental and technological importance, a microscopic understanding of the crystalliza...
Phase-change optical memories are based on the astonishingly rapid nanosecond-scale crystallization ...