AbstractConcurrent multiscale coupling is a powerful tool for obtaining quantum mechanically (QM) accurate material behavior in a small domain while still capturing long range stress fields using a molecular mechanical (MM) description. We outline an improved scheme for QM/MM coupling in metals which permits the QM treatment of a small region chosen from a large, arbitrary MM domain to calculate total system energy and relaxed geometry. In order to test our improved method, we compute solute–vacancy binding in bulk Al as well as the binding of Mg and Pb to a symmetric Σ5 grain boundary. Results are calculated with and without our improvement to the QM/MM scheme and compared to periodic QM results for the same systems. We find that our schem...
We present an approach to model molecular crystals using an adaptive quantum mechanics/molecular mec...
We present an approach to model molecular crystals using an adaptive quantum mechanics/molecular mec...
Molecular dynamics (MD) is a powerful condensed matter simulation tool for bridging between macrosco...
AbstractConcurrent multiscale coupling is a powerful tool for obtaining quantum mechanically (QM) ac...
Concurrent multiscale coupling is a powerful tool for obtaining quantum mechanically (QM) accurate m...
We develop and analyze QM/MM (quantum/classic) hybrid methods for crystalline defects within the con...
The tight binding model is a minimal electronic structure model for molecular modeling and simulatio...
Computational modeling techniques are now standard tools in solid‐state science. They are used routi...
We present an extension of the ‘learn on the fly’ method to the study of the motion of dislocations ...
This thesis presents a computational study of the interaction between solute atoms and defects in th...
Recent advances in quantum mechanical (QM)-based molecular dynamics (MD) simulations have used machi...
The QM/MM method, which couples a quantum mechanical (QM) description of bonding in a localized regi...
This dissertation describes the development and testing of modified embedded atom method (MEAM) inte...
A systematic method for building an extensible tight-binding model from ab initio calculations has b...
The feasibility of a novel approach for the hybrid quantum mechanical/molecular mechanical (QM/MM) t...
We present an approach to model molecular crystals using an adaptive quantum mechanics/molecular mec...
We present an approach to model molecular crystals using an adaptive quantum mechanics/molecular mec...
Molecular dynamics (MD) is a powerful condensed matter simulation tool for bridging between macrosco...
AbstractConcurrent multiscale coupling is a powerful tool for obtaining quantum mechanically (QM) ac...
Concurrent multiscale coupling is a powerful tool for obtaining quantum mechanically (QM) accurate m...
We develop and analyze QM/MM (quantum/classic) hybrid methods for crystalline defects within the con...
The tight binding model is a minimal electronic structure model for molecular modeling and simulatio...
Computational modeling techniques are now standard tools in solid‐state science. They are used routi...
We present an extension of the ‘learn on the fly’ method to the study of the motion of dislocations ...
This thesis presents a computational study of the interaction between solute atoms and defects in th...
Recent advances in quantum mechanical (QM)-based molecular dynamics (MD) simulations have used machi...
The QM/MM method, which couples a quantum mechanical (QM) description of bonding in a localized regi...
This dissertation describes the development and testing of modified embedded atom method (MEAM) inte...
A systematic method for building an extensible tight-binding model from ab initio calculations has b...
The feasibility of a novel approach for the hybrid quantum mechanical/molecular mechanical (QM/MM) t...
We present an approach to model molecular crystals using an adaptive quantum mechanics/molecular mec...
We present an approach to model molecular crystals using an adaptive quantum mechanics/molecular mec...
Molecular dynamics (MD) is a powerful condensed matter simulation tool for bridging between macrosco...