International audienceWe develop a formalism to accurately account for the renormalization of electronic structure due to quantum and thermal nuclear motions within the Born-Oppenheimer approximation. We focus on the fundamental energy gap obtained from electronic addition and removal energies from Quantum Monte Carlo calculations in either the canonical or grand canonical ensembles. The formalism applies as well to effective single electron theories such as those based on Density Functional Theory. We show that electronic (Bloch) crystal momentum can be restored by marginalizing the total electron-ion wave function with respect to the nuclear equilibrium distribution, and we describe an explicit procedure to establish the band structure of...
We present a framework for obtaining reliable solid-state charge and optical excitations and spectra...
Quantum crystals abound in the whole range of solid-state species. Below a certain threshold tempera...
We study the electronic excitation spectra in solid molecular hydrogen (phase I) at ambient temperat...
International audienceWe develop a formalism to accurately account for the renormalization of electr...
We develop a formalism to accurately account for the renormalization of electronic structure due to ...
We present a study of molecular crystals, focused on the effect of nuclear quantum motion and anharm...
International audienceDescribing the dynamics of nuclei in molecules requires a potential energy sur...
A massively parallel, direct quantum molecular dynamics method is described. The method combines a q...
The adiabatic approximation, typically assumed when performing standard Born-Oppenheimer (BO) molecu...
International audienceWe present a novel hybrid quantum/classical approach to the calculation of cha...
The Born–Oppenheimer (BO) description of electronically adiabatic molecular processes predicts a van...
This book presents an analytical theory of the electronic states in ideal low dimensional systems an...
Author Institution: Department of Chemistry, Massachusetts Institute of Technology; Department of Ch...
Quantum dynamics simulations are powerful tools for understanding the mechanisms and the rates of th...
In this work, we illustrate the recently introduced concept of the cavity Born-Oppenheimer approxima...
We present a framework for obtaining reliable solid-state charge and optical excitations and spectra...
Quantum crystals abound in the whole range of solid-state species. Below a certain threshold tempera...
We study the electronic excitation spectra in solid molecular hydrogen (phase I) at ambient temperat...
International audienceWe develop a formalism to accurately account for the renormalization of electr...
We develop a formalism to accurately account for the renormalization of electronic structure due to ...
We present a study of molecular crystals, focused on the effect of nuclear quantum motion and anharm...
International audienceDescribing the dynamics of nuclei in molecules requires a potential energy sur...
A massively parallel, direct quantum molecular dynamics method is described. The method combines a q...
The adiabatic approximation, typically assumed when performing standard Born-Oppenheimer (BO) molecu...
International audienceWe present a novel hybrid quantum/classical approach to the calculation of cha...
The Born–Oppenheimer (BO) description of electronically adiabatic molecular processes predicts a van...
This book presents an analytical theory of the electronic states in ideal low dimensional systems an...
Author Institution: Department of Chemistry, Massachusetts Institute of Technology; Department of Ch...
Quantum dynamics simulations are powerful tools for understanding the mechanisms and the rates of th...
In this work, we illustrate the recently introduced concept of the cavity Born-Oppenheimer approxima...
We present a framework for obtaining reliable solid-state charge and optical excitations and spectra...
Quantum crystals abound in the whole range of solid-state species. Below a certain threshold tempera...
We study the electronic excitation spectra in solid molecular hydrogen (phase I) at ambient temperat...