While it is well known that molecules can be strongly polarized when transferred from the gas phase to a polar liquid, quantifying polarization effects explicitly using either experiment or theory has remained elusive. In this paper, we present a new QM/MM method involving a self-consistent calculation of the liquid state dipole moments, that is able to yield realistic, accurate estimates of the multipole moments of molecules in the liquid state. As a proof-of-concept, we apply our Self-Consistent Electrostatic Embedding (SCEE) method to the widely studied system of pure water. The method gives molecular dipole moments that are significantly enhanced with respect to the isolated gas-phase molecule and that are consistent with the best curre...
Ketones are some of the most widely used solvents, with a variety of applications. In addition, mole...
The methods for the experimental determination of electric dipole moment of molecules in solution fr...
We report here a new force field for water based solely on quantum mechanics (QM) calculations with ...
Understanding polarization effects in condensed phases, like liquids and solutions, requires computa...
Classical non-polarisable water models play a crucial role in computer simulations due to their simp...
In classical nonpolarizable models, electrostatic interactions are usually described by assigning fi...
Classical nonpolarizable water models play a crucial role in computer simulations due to their simpl...
The dipole moment of a single water molecule in liquid water has been a critical concept for underst...
In this work, we propose an improved QM/MM-based strategy to determine condensed-phase polarizabilit...
In this work, we propose an improved QM/MM-based strategy to determine condensed-phase polarizabilit...
The average dipole moment of a water molecule in the condensed phase is enhanced by around 40 percen...
We investigate the modification of gas phase ion polarizabilities upon solvation in polar solvents a...
Recently we reported a combined QM/MM approach to estimate condensed-phase values of atomic polariza...
Driven by the constant increase in computational resources and power, modeling of biomolecular syste...
We present an efficient polarizable electrostatic model based on direct polarization, SMIRNOFF speci...
Ketones are some of the most widely used solvents, with a variety of applications. In addition, mole...
The methods for the experimental determination of electric dipole moment of molecules in solution fr...
We report here a new force field for water based solely on quantum mechanics (QM) calculations with ...
Understanding polarization effects in condensed phases, like liquids and solutions, requires computa...
Classical non-polarisable water models play a crucial role in computer simulations due to their simp...
In classical nonpolarizable models, electrostatic interactions are usually described by assigning fi...
Classical nonpolarizable water models play a crucial role in computer simulations due to their simpl...
The dipole moment of a single water molecule in liquid water has been a critical concept for underst...
In this work, we propose an improved QM/MM-based strategy to determine condensed-phase polarizabilit...
In this work, we propose an improved QM/MM-based strategy to determine condensed-phase polarizabilit...
The average dipole moment of a water molecule in the condensed phase is enhanced by around 40 percen...
We investigate the modification of gas phase ion polarizabilities upon solvation in polar solvents a...
Recently we reported a combined QM/MM approach to estimate condensed-phase values of atomic polariza...
Driven by the constant increase in computational resources and power, modeling of biomolecular syste...
We present an efficient polarizable electrostatic model based on direct polarization, SMIRNOFF speci...
Ketones are some of the most widely used solvents, with a variety of applications. In addition, mole...
The methods for the experimental determination of electric dipole moment of molecules in solution fr...
We report here a new force field for water based solely on quantum mechanics (QM) calculations with ...