An on-lattice kinetic Monte Carlo model of vacancy aggregation in crystalline silicon is parametrized using direct regression to evolution data from nonequilibrium molecular dynamics simulations. The approach bypasses the need to manually compute an energy barrier for each possible transition and leads to an excellent, robust representation of the molecular dynamics data. We show that the resulting lattice kinetic Monte Carlo model correctly captures the behavior of the real, continuous space system by properly accounting for continuous space entropic effects, which are often neglected in lattice-based models of atomistic processes. These contributions are particularly important at the high temperatures relevant to many steps in semiconduct...
Phenomena such as solute strengthening in alloys as well as embrittlement of bimaterial interfaces a...
We present a technique for the structural optimization of atom models to study long time relaxation ...
The properties of materials, even at the atomic level, evolve on macroscopic time scales. Following ...
An on-lattice kinetic Monte Carlo model of vacancy aggregation in crystalline silicon is parametrize...
Classical harmonic transition state theory is considered and applied in discrete lattice cells with ...
A new approach is presented for performing efficient molecular dynamics simulations of solute aggreg...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Materials Science and Engineeri...
A detailed continuum (mean-field) model is presented that captures quantitatively the evolution of a...
We study point-defect diffusion in crystalline silicon using the kinetic activation-relaxation techn...
We describe the development of a new object kinetic Monte Carlo (kMC) code where the elementary defe...
International audienceMost of the phase transformations modifying the microstructure, thereby the m...
International audienceExact modeling of the dynamics of chemical and material systems over experimen...
This review article is intended as a practical guide for newcomers to the field of kinetic Monte Car...
A computational framework is presented for describing the nucleation and growth of vacancy clusters ...
We propose a novel approach for simulating, with atomistic kinetic Monte Carlo, the segregation or d...
Phenomena such as solute strengthening in alloys as well as embrittlement of bimaterial interfaces a...
We present a technique for the structural optimization of atom models to study long time relaxation ...
The properties of materials, even at the atomic level, evolve on macroscopic time scales. Following ...
An on-lattice kinetic Monte Carlo model of vacancy aggregation in crystalline silicon is parametrize...
Classical harmonic transition state theory is considered and applied in discrete lattice cells with ...
A new approach is presented for performing efficient molecular dynamics simulations of solute aggreg...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Materials Science and Engineeri...
A detailed continuum (mean-field) model is presented that captures quantitatively the evolution of a...
We study point-defect diffusion in crystalline silicon using the kinetic activation-relaxation techn...
We describe the development of a new object kinetic Monte Carlo (kMC) code where the elementary defe...
International audienceMost of the phase transformations modifying the microstructure, thereby the m...
International audienceExact modeling of the dynamics of chemical and material systems over experimen...
This review article is intended as a practical guide for newcomers to the field of kinetic Monte Car...
A computational framework is presented for describing the nucleation and growth of vacancy clusters ...
We propose a novel approach for simulating, with atomistic kinetic Monte Carlo, the segregation or d...
Phenomena such as solute strengthening in alloys as well as embrittlement of bimaterial interfaces a...
We present a technique for the structural optimization of atom models to study long time relaxation ...
The properties of materials, even at the atomic level, evolve on macroscopic time scales. Following ...