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Polymorphic transitions in single crystals: A new molecular dynamics method

Journal of Applied Physics · 1981 · Vol. 52(12) · pp. 7182–7190
Michele ParrinelloA. Rahman

Abstract

A new Lagrangian formulation is introduced. It can be used to make molecular dynamics (MD) calculations on systems under the most general, externally applied, conditions of stress. In this formulation the MD cell shape and size can change according to dynamical equations given by this Lagrangian. This new MD technique is well suited to the study of structural transformations in solids under external stress and at finite temperature. As an example of the use of this technique we show how a single crystal of Ni behaves under uniform uniaxial compressive and tensile loads. This work confirms some of the results of static (i.e., zero temperature) calculations reported in the literature. We also show that some results regarding the stress-strain relation obtained by static calculations are invalid at finite temperature. We find that, under compressive loading, our model of Ni shows a bifurcation in its stress-strain relation; this bifurcation provides a link in configuration space between cubic and hexagonal close packing. It is suggested that such a transformation could perhaps be observed experimentally under extreme conditions of shock.

Microstructure and mechanical propertiesProtein Structure and DynamicsEnzyme Structure and FunctionBifurcationMolecular dynamicsStress (linguistics)Materials scienceShock (circulatory)Work (physics)Stress spaceUltimate tensile strengthMechanicsLagrangian

Funding

  • U.S. Department of Energy
Citations
19,685
FWCI
14.01
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References
Introduction to Solid State Physics
American Journal of Physics · 1957 · 22,357 citations
Molecular dynamics simulations at constant pressure and/or temperature
The Journal of Chemical Physics · 1980 · 5,653 citations
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