Free-energy calculations using classical molecular simulation: application to the determination of the melting point and chemical potential of a flexible RDX model

被引:23
作者
Sellers, Michael S. [1 ]
Lisal, Martin [2 ,3 ]
Brennan, John K. [1 ]
机构
[1] US Army, Res Lab, Weap & Mat Res Directorate, RDRL WML B, Aberdeen Proving Ground, MD 21005 USA
[2] ASCR, Lab Chem & Phys Aerosols, Inst Chem Proc Fundamentals, Vvi, Rozvojova 135-1, Prague 16502 6, Suchdol, Czech Republic
[3] Univ JE Purkyne, Dept Phys, Fac Sci, Ceske Mladeze 8, Usti Nad Labem 40096, Czech Republic
关键词
SOLID-LIQUID COEXISTENCE; ATOMISTIC SIMULATION; DYNAMICS SIMULATIONS; PHASE COEXISTENCE; INTEGRATION; SYSTEMS;
D O I
10.1039/c5cp06164d
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
We present an extension of various free-energy methodologies to determine the chemical potential of the solid and liquid phases of a fully-flexible molecule using classical simulation. The methods are applied to the Smith-Bharadwaj atomistic potential representation of cyclotrimethylene trinitramine (RDX), a well-studied energetic material, to accurately determine the solid and liquid phase Gibbs free energies, and the melting point (T-m). We outline an efficient technique to find the absolute chemical potential and melting point of a fully-flexible molecule using one set of simulations to compute the solid absolute chemical potential and one set of simulations to compute the solid-liquid free energy difference. With this combination, only a handful of simulations are needed, whereby the absolute quantities of the chemical potentials are obtained, for use in other property calculations, such as the characterization of crystal polymorphs or the determination of the entropy. Using the LAMMPS molecular simulator, the Frenkel and Ladd and pseudo-supercritical path techniques are adapted to generate 3rd order fits of the solid and liquid chemical potentials. Results yield the thermodynamic melting point T-m = 488.75 K at 1.0 atm. We also validate these calculations and compare this melting point to one obtained from a typical superheated simulation technique.
引用
收藏
页码:7841 / 7850
页数:10
相关论文
共 47 条
[21]   The multiscale coarse-graining method: Assessing its accuracy and introducing density dependent coarse-grain potentials [J].
Izvekov, Sergei ;
Chung, Peter W. ;
Rice, Betsy M. .
JOURNAL OF CHEMICAL PHYSICS, 2010, 133 (06)
[22]   Molecular Simulation of the Thermal and Transport Properties of Three Alkali Nitrate Salts [J].
Jayaraman, Saivenkataraman ;
Thompson, Aidan P. ;
von Lilienfeld, O. Anatole ;
Maginn, Edward J. .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2010, 49 (02) :559-571
[23]   Statistical mechanics of fluid mixtures [J].
Kirkwood, JG .
JOURNAL OF CHEMICAL PHYSICS, 1935, 3 (05) :300-313
[24]   DIRECT EVALUATION OF PHASE COEXISTENCE BY MOLECULAR SIMULATION VIA INTEGRATION ALONG THE SATURATION LINE [J].
KOFKE, DA .
JOURNAL OF CHEMICAL PHYSICS, 1993, 98 (05) :4149-4162
[25]   GIBBS-DUHEM INTEGRATION - A NEW METHOD FOR DIRECT EVALUATION OF PHASE COEXISTENCE BY MOLECULAR SIMULATION [J].
KOFKE, DA .
MOLECULAR PHYSICS, 1993, 78 (06) :1331-1336
[26]   Maximum superheating and undercooling:: Systematics, molecular dynamics simulations, and dynamic experiments -: art. no. 134206 [J].
Luo, SN ;
Ahrens, TJ ;
Çagin, T ;
Strachan, A ;
Goddard, WA ;
Swift, DC .
PHYSICAL REVIEW B, 2003, 68 (13)
[27]   Atomistic simulation of the thermodynamic and transport properties of ionic liquids [J].
Maginn, Edward J. .
ACCOUNTS OF CHEMICAL RESEARCH, 2007, 40 (11) :1200-1207
[28]   Constant entropy sampling and release waves of shock compressions [J].
Maillet, Jean-Bernard ;
Bourasseau, Emeric ;
Soulard, Laurent ;
Clerouin, Jean ;
Stoltz, Gabriel .
PHYSICAL REVIEW E, 2009, 80 (02)
[29]   Simulations of High-Pressure Phases in RDX [J].
Munday, Lynn B. ;
Chung, Peter W. ;
Rice, Betsy M. ;
Solares, Santiago D. .
JOURNAL OF PHYSICAL CHEMISTRY B, 2011, 115 (15) :4378-4386
[30]   Computing the free energy of molecular solids by the Einstein molecule approach: Ices XIII and XIV, hard-dumbbells and a patchy model of proteins [J].
Noya, E. G. ;
Conde, M. M. ;
Vega, C. .
JOURNAL OF CHEMICAL PHYSICS, 2008, 129 (10)