Artículos de revistas
Supersonic Dislocation Bursts in Silicon
Fecha
2016-06Registro en:
Hahn, E. N.; Zhao, S.; Bringa, Eduardo Marcial; Meyers, Marc A.; Supersonic Dislocation Bursts in Silicon; Nature Publishing Group; Scientific Reports; 6; 6-2016; 1-7
2045-2322
CONICET Digital
CONICET
Autor
Hahn, E. N.
Zhao, S.
Bringa, Eduardo Marcial
Meyers, Marc A.
Resumen
Dislocations are the primary agents of permanent deformation in crystalline solids. Since the theoretical prediction of supersonic dislocations over half a century ago, there is a dearth of experimental evidence supporting their existence. Here we use non-equilibrium molecular dynamics simulations of shocked silicon to reveal transient supersonic partial dislocation motion at approximately 15 km/s, faster than any previous in-silico observation. Homogeneous dislocation nucleation occurs near the shock front and supersonic dislocation motion lasts just fractions of picoseconds before the dislocations catch the shock front and decelerate back to the elastic wave speed. Applying a modified analytical equation for dislocation evolution we successfully predict a dislocation density of 1.5 × 1012 cm-2 within the shocked volume, in agreement with the present simulations and realistic in regards to prior and on-going recovery experiments in silicon.