We present a new algorithm for ab initio quantum nonadiabatic molecular dynamics that combines the best features of ab initio Multiple Spawning (AIMS) and Multiconfigurational Ehrenfest (MCE) methods. In this new method, ab initio multiple cloning (AIMC), the individual trajectory basis functions (TBFs) follow Ehrenfest equations of motion (as in MCE). However, the basis set is expanded (as in AIMS) when these TBFs become sufficiently mixed, preventing prolonged evolution on an averaged potential energy surface. We refer to the expansion of the basis set as "cloning," in analogy to the "spawning" procedure in AIMS. This synthesis of AIMS and MCE allows us to leverage the benefits of mean-field evolution during periods of strong nonadiabatic...
We present a new implementation of the Ab Initio Multiple Cloning (AIMC) method, which is applied fo...
This Chapter describes themethod for non-adiabatic quantum molecular dynamics called Full Multiple S...
This Chapter describes themethod for non-adiabatic quantum molecular dynamics called Full Multiple S...
The recently developed ab initio multiple cloning (AIMC) approach based on the multiconfigurational ...
Direct atomistic simulation of nonadiabatic molecular dynamics is a challenging goal that allows imp...
We present a new implementation of the Ab Initio Multiple Cloning (AIMC) method, which is applied fo...
We present a new implementation of the Ab Initio Multiple Cloning (AIMC) method, which is applied fo...
The Multiconfigurational Ehrenfest (MCE) method is a quantum dynamics technique which allows treatme...
In this paper, we compare and contrast basis set sampling techniques recently developed for use in t...
Ab initio multiple-spawning (AIMS) describes the nonadiabatic dynamics of molecules by expanding nuc...
Ab initio multiple-spawning (AIMS) describes the nonadiabatic dynamics of molecules by expanding nuc...
Ab initio multiple-spawning (AIMS) describes the nonadiabatic dynamics of molecules by expanding nuc...
Ab initio multiple-spawning (AIMS) describes the nonadiabatic dynamics of molecules by expanding nuc...
Full multiple spawning offers an in principle exact framework for excited-state dynamics, where nucl...
Ab initio multiple spawning (AIMS) offers a reliable strategy to describe the excited-state dynamics...
We present a new implementation of the Ab Initio Multiple Cloning (AIMC) method, which is applied fo...
This Chapter describes themethod for non-adiabatic quantum molecular dynamics called Full Multiple S...
This Chapter describes themethod for non-adiabatic quantum molecular dynamics called Full Multiple S...
The recently developed ab initio multiple cloning (AIMC) approach based on the multiconfigurational ...
Direct atomistic simulation of nonadiabatic molecular dynamics is a challenging goal that allows imp...
We present a new implementation of the Ab Initio Multiple Cloning (AIMC) method, which is applied fo...
We present a new implementation of the Ab Initio Multiple Cloning (AIMC) method, which is applied fo...
The Multiconfigurational Ehrenfest (MCE) method is a quantum dynamics technique which allows treatme...
In this paper, we compare and contrast basis set sampling techniques recently developed for use in t...
Ab initio multiple-spawning (AIMS) describes the nonadiabatic dynamics of molecules by expanding nuc...
Ab initio multiple-spawning (AIMS) describes the nonadiabatic dynamics of molecules by expanding nuc...
Ab initio multiple-spawning (AIMS) describes the nonadiabatic dynamics of molecules by expanding nuc...
Ab initio multiple-spawning (AIMS) describes the nonadiabatic dynamics of molecules by expanding nuc...
Full multiple spawning offers an in principle exact framework for excited-state dynamics, where nucl...
Ab initio multiple spawning (AIMS) offers a reliable strategy to describe the excited-state dynamics...
We present a new implementation of the Ab Initio Multiple Cloning (AIMC) method, which is applied fo...
This Chapter describes themethod for non-adiabatic quantum molecular dynamics called Full Multiple S...
This Chapter describes themethod for non-adiabatic quantum molecular dynamics called Full Multiple S...