English

Molecular Weight Dependence of Polymersome Membrane Elasticity and Stability

Soft Condensed Matter 2009-11-07 v2 Materials Science

Abstract

Vesicles prepared in water from a series of diblock copolymers and termed "polymersomes" are physically characterized. With increasing molecular weight Mˉn\bar{M}_n, the hydrophobic core thickness dd for the self-assembled bilayers of polyethyleneoxide - polybutadiene (PEO-PBD) increases up to 20 nmnm - considerably greater than any previously studied lipid system. The mechanical responses of these membranes, specifically, the area elastic modulus KaK_a and maximal areal strain αc\alpha_c are measured by micromanipulation. As expected for interface-dominated elasticity, KaK_a (\simeq 100 pN/nmpN/nm) is found to be independent of Mˉn\bar{M}_n. Related mean-field ideas also predict a limiting value for αc\alpha_c which is universal and about 10-fold above that typical of lipids. Experiments indeed show αc\alpha_c generally increases with Mˉn\bar{M}_n, coming close to the theoretical limit before stress relaxation is opposed by what might be chain entanglements at the highest Mˉn\bar{M}_n. The results highlight the interfacial limits of self-assemblies at the nano-scale.

Keywords

Cite

@article{arxiv.cond-mat/0110088,
  title  = {Molecular Weight Dependence of Polymersome Membrane Elasticity and Stability},
  author = {Harry Bermudez and Aaron K. Brannan and Daniel A. Hammer and Frank S. Bates and Dennis E. Discher},
  journal= {arXiv preprint arXiv:cond-mat/0110088},
  year   = {2009}
}

Comments

16 pages, 5 figures, and 1 table