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Authors Schulmann, N. ; Meyer, H. ; Johner, A. ; Baschnagel, J. ; Wittmer, J. P. ; Kreer, T. ; Cavallo, A.
Title Strictly two-dimensional self-avoiding walks: Density crossover scaling
Date 06.06.2013
Number 34303
Abstract The density crossover scaling of thermodynamic and conformational properties of solutions and melts of self-avoiding and highly flexible polymer chains without chain intersections confined to strictly two dimensions (d = 2) is investigated by means of molecular dynamics and Monte Carlo simulations of a standard coarse grained bead-spring model. We focus on properties related to the contact exponent set by the intrachain subchain size distribution. With R ~ N? being the size of chains of length N and ? the monomer density, the interaction energy eint between monomers from different chains and the corresponding number nint of interchain contacts per monomer are found to scale as with ? = 3/4 and ?2 = 19/12 for dilute solutions and ? = 1/d and ?2 = 3/4 for N» g(?) ˜ 1/?2. Irrespective of ?, long chains thus become compact packings of blobs of contour length with dp = d - ?2 = 5/4 being the fractal line dimension. Due to the generalized Porod scattering of the compact chains, the Kratky representation of the intramolecular form factor F(q) reveals a non-monotonous behavior approaching with increasing chain length and density a power-law slope F(q)qd/?˜1/(qR)?2 in the intermediate regime of the wavevector q. The specific intermolecular contact probability is argued to imply an enhanced compatibility for polymer blends confined to ultrathin films. We comment briefly on finite persistence length effects.<br /><br />The article is published in the original.
Publisher Polymer Science / Series C
Wikidata
Citation Polymer Science / Series C 55 (2013) 990-1020
DOI https://doi.org/10.1134/S1811238213070072
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