Chain movement in crystallization process by molecular dynamics simulation

Authors
Citation
M. Iwata et H. Sato, Chain movement in crystallization process by molecular dynamics simulation, PCCP PHYS C, 1(10), 1999, pp. 2491-2500
Citations number
21
Categorie Soggetti
Physical Chemistry/Chemical Physics
Journal title
PCCP PHYSICAL CHEMISTRY CHEMICAL PHYSICS
ISSN journal
14639076 → ACNP
Volume
1
Issue
10
Year of publication
1999
Pages
2491 - 2500
Database
ISI
SICI code
1463-9076(19990515)1:10<2491:CMICPB>2.0.ZU;2-8
Abstract
Molecular dynamics simulations on the melting and crystallization processes of a single polymer chain consisting of 300 CH2 units were performed. Melt ing point was determined to be 620 K - the temperature at which a chain cha nged its shape from a folded structure to an unfolded-globular structure. O n the crystallization process, simulations were performed at a low temperat ure (300 K), about half the melting temperature and at a high temperature ( 600 K), slightly below the melting temperature. At both temperatures, folde d structures were obtained and sliding movements of a chain were observed d uring the crystallization process. At the large supercooling temperature, t hat is 300 K, the folding length of the crystal varied with each crystalliz ation run and the total potential energies of the structures were found to be trapped in local minima. Refolding to the most stable structure was not observed. At the small supercooling temperature, that is 600 K, the size of folding length again varied with each crystallization run, but its deviati on was much less than at 300 K. Total potential energies of the final folde d structures at 600 K were all equivalent and assigned to a global minima. During the run at 600 K, refolding events to other folded structures which had a different number of stems and equivalent total potential energy were sometimes observed.