The 3-Attractor Water Model: Monte-Carlo Simulations with a New, Effective 2-Body Potential (BMW)

According to the precepts of the 3-attractor (3-A) water model, effective 2-body water potentials should feature as local minima the bifurcated and inverted water dimers in addition to the well-known linear water dimer global minimum. In order to test the 3-A model, a new pair wise effective intermo...

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Main Authors: Francis Muguet, Svetlana V. Davletbaeva, Yuri G. Bushuev
Format: Article
Language:English
Published: MDPI AG 2003-02-01
Series:Molecules
Subjects:
Online Access:http://www.mdpi.com/1420-3049/8/2/226/
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spelling doaj-244e97f1c9e74be0862643dd1db2b89a2020-11-24T23:27:13ZengMDPI AGMolecules1420-30492003-02-018222624210.3390/80200226The 3-Attractor Water Model: Monte-Carlo Simulations with a New, Effective 2-Body Potential (BMW)Francis MuguetSvetlana V. DavletbaevaYuri G. BushuevAccording to the precepts of the 3-attractor (3-A) water model, effective 2-body water potentials should feature as local minima the bifurcated and inverted water dimers in addition to the well-known linear water dimer global minimum. In order to test the 3-A model, a new pair wise effective intermolecular rigid water potential has been designed. The new potential is part of new class of potentials called BMW (Bushuev-Muguet-Water) which is built by modifying existing empirical potentials. This version (BMW v. 0.1) has been designed by modifying the SPC/E empirical water potential. It is a preliminary version well suited for exploratory Monte-Carlo simulations. The shape of the potential energy surface (PES) around each local minima has been approximated with the help of Gaussian functions. Classical Monte Carlo simulations have been carried out for liquid water in the NPT ensemble for a very wide range of state parameters up to the supercritical water regime. Thermodynamic properties are reported. The radial distributions functions (RDFs) have been computed and are compared with the RDFs obtained from Neutron Scattering experimental data. Our preliminary Monte-Carlo simulations show that the seemingly unconventional hypotheses of the 3-A model are most plausible. The simulation has also uncovered a totally new role for 2-fold H-bonds.http://www.mdpi.com/1420-3049/8/2/226/watersupercritical waterMonte-Carlo simulationwater structureintermolecular interactionswater potentialradial distribution functionneutron diffraction
collection DOAJ
language English
format Article
sources DOAJ
author Francis Muguet
Svetlana V. Davletbaeva
Yuri G. Bushuev
spellingShingle Francis Muguet
Svetlana V. Davletbaeva
Yuri G. Bushuev
The 3-Attractor Water Model: Monte-Carlo Simulations with a New, Effective 2-Body Potential (BMW)
Molecules
water
supercritical water
Monte-Carlo simulation
water structure
intermolecular interactions
water potential
radial distribution function
neutron diffraction
author_facet Francis Muguet
Svetlana V. Davletbaeva
Yuri G. Bushuev
author_sort Francis Muguet
title The 3-Attractor Water Model: Monte-Carlo Simulations with a New, Effective 2-Body Potential (BMW)
title_short The 3-Attractor Water Model: Monte-Carlo Simulations with a New, Effective 2-Body Potential (BMW)
title_full The 3-Attractor Water Model: Monte-Carlo Simulations with a New, Effective 2-Body Potential (BMW)
title_fullStr The 3-Attractor Water Model: Monte-Carlo Simulations with a New, Effective 2-Body Potential (BMW)
title_full_unstemmed The 3-Attractor Water Model: Monte-Carlo Simulations with a New, Effective 2-Body Potential (BMW)
title_sort 3-attractor water model: monte-carlo simulations with a new, effective 2-body potential (bmw)
publisher MDPI AG
series Molecules
issn 1420-3049
publishDate 2003-02-01
description According to the precepts of the 3-attractor (3-A) water model, effective 2-body water potentials should feature as local minima the bifurcated and inverted water dimers in addition to the well-known linear water dimer global minimum. In order to test the 3-A model, a new pair wise effective intermolecular rigid water potential has been designed. The new potential is part of new class of potentials called BMW (Bushuev-Muguet-Water) which is built by modifying existing empirical potentials. This version (BMW v. 0.1) has been designed by modifying the SPC/E empirical water potential. It is a preliminary version well suited for exploratory Monte-Carlo simulations. The shape of the potential energy surface (PES) around each local minima has been approximated with the help of Gaussian functions. Classical Monte Carlo simulations have been carried out for liquid water in the NPT ensemble for a very wide range of state parameters up to the supercritical water regime. Thermodynamic properties are reported. The radial distributions functions (RDFs) have been computed and are compared with the RDFs obtained from Neutron Scattering experimental data. Our preliminary Monte-Carlo simulations show that the seemingly unconventional hypotheses of the 3-A model are most plausible. The simulation has also uncovered a totally new role for 2-fold H-bonds.
topic water
supercritical water
Monte-Carlo simulation
water structure
intermolecular interactions
water potential
radial distribution function
neutron diffraction
url http://www.mdpi.com/1420-3049/8/2/226/
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