A lattice model for self- and mutually avoiding semiflexible polymer chains
- 15 March 1987
- journal article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 86 (6) , 3720-3730
- https://doi.org/10.1063/1.451974
Abstract
We introduce a spin field theory for many self- and mutually avoiding polymers with arbitrary stiffness on a regular lattice. The model allows for the complete crossover between flexible polymers and rods. The model also includes arbitrary polymer length distributions and arbitrary volume fractions from the highly dilute regime to the melt. The mean field approximation to the full theory reproduces Flory theory, but our model permits a rigorous and systematic evaluation of corrections to the mean field approximation. The corrections are in the form of a double expansion in powers of the volume fraction ψ and, formally, in powers of the inverse lattice coordination number z−1. We present the correction to first order in z−1 and discuss its relevance to the entropic contribution to the Flory χ parameter for semiflexible polymers.Keywords
This publication has 24 references indexed in Scilit:
- The collapse transition of semiflexible polymers. A Monte Carlo simulation of a model systemThe Journal of Chemical Physics, 1986
- Statistical mechanics of the packing of rods on a lattice: Cluster expansion for systematic corrections to mean fieldThe Journal of Chemical Physics, 1986
- Phase transitions of semiflexible lattice polymersThe Journal of Chemical Physics, 1986
- Interaction between two adsorbed polymer layersMacromolecules, 1985
- New lattice model for interacting, avoiding polymers with controlled length distributionJournal of Physics A: General Physics, 1985
- Phase transition of cubic-lattice polymer systemsMacromolecules, 1984
- On the validity of the Flory–Huggins approximation for semiflexible chainsThe Journal of Chemical Physics, 1981
- Chain Stiffness and the Lattice Theory of Polymer PhasesThe Journal of Chemical Physics, 1958
- Statistical thermodynamics of semi-flexible chain moleculesProceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences, 1956
- THERMODYNAMIC PROPERTIES OF SOLUTIONS OF HIGH POLYMERS: THE EMPIRICAL CONSTANT IN THE ACTIVITY EQUATIONAnnals of the New York Academy of Sciences, 1943