Scinovex
articleTop 1% cited

Water Modeled As an Intermediate Element between Carbon and Silicon

The Journal of Physical Chemistry B · 2008 · Vol. 113(13) · pp. 4008–4016
Valeria MolineroEmily B. Moore

Abstract

Water and silicon are chemically dissimilar substances with common physical properties. Their liquids display a temperature of maximum density, increased diffusivity on compression, and they form tetrahedral crystals and tetrahedral amorphous phases. The common feature to water, silicon, and carbon is the formation of tetrahedrally coordinated units. We exploit these similarities to develop a coarse-grained model of water (mW) that is essentially an atom with tetrahedrality intermediate between carbon and silicon. mW mimics the hydrogen-bonded structure of water through the introduction of a nonbond angular dependent term that encourages tetrahedral configurations. The model departs from the prevailing paradigm in water modeling: the use of long-ranged forces (electrostatics) to produce short-ranged (hydrogen-bonded) structure. mW has only short-range interactions yet it reproduces the energetics, density and structure of liquid water, and its anomalies and phase transitions with comparable or better accuracy than the most popular atomistic models of water, at less than 1% of the computational cost. We conclude that it is not the nature of the interactions but the connectivity of the molecules that determines the structural and thermodynamic behavior of water. The speedup in computing time provided by mW makes it particularly useful for the study of slow processes in deeply supercooled water, the mechanism of ice nucleation, wetting-drying transitions, and as a realistic water model for coarse-grained simulations of biomolecules and complex materials.

Material Dynamics and PropertiesTheoretical and Computational Physicsnanoparticles nucleation surface interactionsSupercoolingChemical physicsSiliconWater modelTetrahedronCarbon fibersMaterials scienceNucleationMolecular dynamicsNanotechnology
Citations
1,112
FWCI
11.50
field-weighted impact
References
71
Percentile
99%
vs. same field & year
Citations per year
References
Comparison of simple potential functions for simulating liquid water
The Journal of Chemical Physics · 1983 · 41,376 citations
A general purpose model for the condensed phases of water: TIP4P/2005
The Journal of Chemical Physics · 2005 · 3,883 citations
Fast Parallel Algorithms for Short-Range Molecular Dynamics
Journal of Computational Physics · 1995 · 43,820 citations
Computer simulation of local order in condensed phases of silicon
Physical review. B, Condensed matter · 1985 · 5,220 citations
The missing term in effective pair potentials
The Journal of Physical Chemistry · 1987 · 13,192 citations
Polarizable Atomic Multipole Water Model for Molecular Mechanics Simulation
The Journal of Physical Chemistry B · 2003 · 1,433 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.