Electronic Properties of Water in Liquid Environment. A Sequential QM/MM Study Using the Free Energy Gradient Method


Autoria(s): Georg, Herbert C.; Canuto, Sylvio Roberto Accioly
Contribuinte(s)

UNIVERSIDADE DE SÃO PAULO

Data(s)

07/11/2013

07/11/2013

2012

Resumo

There is a continuous search for theoretical methods that are able to describe the effects of the liquid environment on molecular systems. Different methods emphasize different aspects, and the treatment of both the local and bulk properties is still a great challenge. In this work, the electronic properties of a water molecule in liquid environment is studied by performing a relaxation of the geometry and electronic distribution using the free energy gradient method. This is made using a series of steps in each of which we run a purely molecular mechanical (MM) Monte Carlo Metropolis simulation of liquid water and subsequently perform a quantum mechanical/molecular mechanical (QM/MM) calculation of the ensemble averages of the charge distribution, atomic forces, and second derivatives. The MP2/aug-cc-pV5Z level is used to describe the electronic properties of the QM water. B3LYP with specially designed basis functions are used for the magnetic properties. Very good agreement is found for the local properties of water, such as geometry, vibrational frequencies, dipole moment, dipole polarizability, chemical shift, and spin-spin coupling constants. The very good performance of the free energy method combined with a QM/MM approach along with the possible limitations are briefly discussed.

FAPESP

FAPESP

CNPq

CNPq

FAPEG

FAPEG

NBionet-Brasil

NBionetBrasil

Identificador

JOURNAL OF PHYSICAL CHEMISTRY B, WASHINGTON, v. 116, n. 36, supl. 2, Part 3, pp. 11247-11254, SEP 13, 2012

1520-6106

http://www.producao.usp.br/handle/BDPI/43041

10.1021/jp304201b

http://dx.doi.org/10.1021/jp304201b

Idioma(s)

eng

Publicador

AMER CHEMICAL SOC

WASHINGTON

Relação

JOURNAL OF PHYSICAL CHEMISTRY B

Direitos

closedAccess

Copyright AMER CHEMICAL SOC

Palavras-Chave #SPIN COUPLING-CONSTANTS #SOLVENT ELECTROSTATIC POTENTIALS #MOLECULAR-DYNAMICS SIMULATIONS #LENNARD-JONES PARAMETERS #STATISTICAL-MECHANICAL TREATMENT #TRANSITION-STATE OPTIMIZATION #NUCLEAR SHIELDING CONSTANTS #DENSITY-FUNCTIONAL METHODS #CARLO-QUANTUM-MECHANICS #BASIS-SET CONVERGENCE #CHEMISTRY, PHYSICAL
Tipo

article

original article

publishedVersion