Recent experiments employing nanosecond white-light X-ray diffraction have demonstrated a complex response of pure, single crystal silicon to shock compression on ultra-fast timescales. We present here details of a Lagrangian code which tracks both longitudinal and transverse strains, and successfully reproduces the experimental response by incorporating a model of the shock-induced, yet kinetically inhibited, phase transition. This model is also shown to reproduce results of classical molecular dynamics simulations of shock compressed silicon
Dislocations are the primary agents of permanent deformation in crystalline solids. Since the theore...
We describe how ab initio molecular dynamics can be used to determine the Hugoniot locus (states acc...
Transient x-ray diffraction is used to record time-resolved information about the shock compression ...
Recent experiments employing nanosecond white-light x-ray di↵raction have demonstrated a complex res...
The response of silicon to shock-compression has been an area of active research for decades. Howeve...
The elastic and inelastic response of [001] oriented silicon to laser compression has been a topic o...
The elastic and inelastic response of [001] oriented silicon to laser compression has been a topic o...
Silicon (Si) is one of the most abundant elements on Earth, and it is the most widely used semicondu...
Silicon (Si) is one of the most abundant elements on Earth, and it is the most important and widely ...
Silicon, being one of the most abundant elements in nature, attracts wide-ranging scientific and tec...
Silicon is ubiquitous in our advanced technological society, yet our current understanding of change...
Under rapid high-temperature, high-pressure loading, lattices exhibit complex elastic-inelastic resp...
We report results of molecular dynamics simulation of shock wave propagation in silicon in [100], [1...
An understanding of the fundamental mechanism behind the relief of shear stress in single-crystal si...
Silicon, being one of the most abundant elements in nature, attracts wide-ranging scient...
Dislocations are the primary agents of permanent deformation in crystalline solids. Since the theore...
We describe how ab initio molecular dynamics can be used to determine the Hugoniot locus (states acc...
Transient x-ray diffraction is used to record time-resolved information about the shock compression ...
Recent experiments employing nanosecond white-light x-ray di↵raction have demonstrated a complex res...
The response of silicon to shock-compression has been an area of active research for decades. Howeve...
The elastic and inelastic response of [001] oriented silicon to laser compression has been a topic o...
The elastic and inelastic response of [001] oriented silicon to laser compression has been a topic o...
Silicon (Si) is one of the most abundant elements on Earth, and it is the most widely used semicondu...
Silicon (Si) is one of the most abundant elements on Earth, and it is the most important and widely ...
Silicon, being one of the most abundant elements in nature, attracts wide-ranging scientific and tec...
Silicon is ubiquitous in our advanced technological society, yet our current understanding of change...
Under rapid high-temperature, high-pressure loading, lattices exhibit complex elastic-inelastic resp...
We report results of molecular dynamics simulation of shock wave propagation in silicon in [100], [1...
An understanding of the fundamental mechanism behind the relief of shear stress in single-crystal si...
Silicon, being one of the most abundant elements in nature, attracts wide-ranging scient...
Dislocations are the primary agents of permanent deformation in crystalline solids. Since the theore...
We describe how ab initio molecular dynamics can be used to determine the Hugoniot locus (states acc...
Transient x-ray diffraction is used to record time-resolved information about the shock compression ...