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Journal ArticleDOI

On the Origins of Morphological Complexity in Block Copolymer Surfactants

Sumeet Jain, +1 more
- 18 Apr 2003 - 
- Vol. 300, Iss: 5618, pp 460-464
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TLDR
Experiments with poly(1,2-butadiene-b-ethylene oxide) diblock copolymers are described, which form Y-junctions and three-dimensional networks in water at weight fractions of PEO intermediate to those associated with vesicle and wormlike micelle morphologies.
Abstract
Amphiphilic compounds such as lipids and surfactants are fundamental building blocks of soft matter. We describe experiments with poly(1,2-butadiene-b-ethylene oxide) (PB-PEO) diblock copolymers, which form Y-junctions and three-dimensional networks in water at weight fractions of PEOintermediate to those associated with vesicle and wormlike micelle morphologies. Fragmentation of the network produces a nonergodic array of complex reticulated particles that have been imaged by cryogenic transmission electron microscopy. Data obtained with two sets of PB-PEOcompounds indicate that this type of self-assembly appears above a critical molecular weight. These block copolymers represent versatile amphiphiles, mimicking certain low molecular weight three-component (surfactant/water/oil) microemulsions, without addition of a separate hydrophobe.

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Citations
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Journal ArticleDOI

Self-assembly of block copolymers

TL;DR: The present tutorial review introduces the primary principles of BCP self-assembly in bulk and in solution by describing experiments, theories, accessible morphologies and morphological transitions, factors affecting the morphology, thermodynamics and kinetics, among others.
Journal ArticleDOI

Shape effects of filaments versus spherical particles in flow and drug delivery.

TL;DR: Highly stable, polymer micelle assemblies known as filomicelles are used to compare the transport and trafficking of flexible filaments with spheres of similar chemistry and show that long-circulating vehicles need not be nanospheres.
Journal ArticleDOI

Self-Assembled Block Copolymer Aggregates: From Micelles to Vesicles and their Biological Applications.

TL;DR: This review is focused on the inherent advantages in using polymer vesicles over their small molecule lipid counterparts and the potential applications in biology for both drug delivery and synthetic cellular reactors.
Journal ArticleDOI

Self-Assembled Nanoreactors

TL;DR: An overview of the wide range of nanoreactors that have been constructed from synthetic and biological building blocks using both covalent and noncovalent approaches is given, starting from small organic molecular containers expanding to large compartment-containing assemblies.
Journal ArticleDOI

Block copolymer assembly via kinetic control.

TL;DR: Through the kinetic manipulation of charged, amphiphilic block copolymers in solution, the technique is able to generate different nanoscale structures with simple blockCopolymer chemistry, which relies on divalent organic counter ions and solvent mixtures to drive the organization of the blockcopolymers down specific pathways into complex one-dimensional structures.
References
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Journal ArticleDOI

Block Copolymers—Designer Soft Materials

TL;DR: The Knitting Pattern as mentioned in this paper is a block copolymer that was discovered by Reimund Stadler and his coworkers and reflects a delicate free-energy minimization that is common to all blockcopolymer materials.
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Polymersomes: tough vesicles made from diblock copolymers.

TL;DR: The results suggest a new class of synthetic thin-shelled capsules based on block copolymer chemistry, and both the membrane bending and area expansion moduli of electroformed polymersomes (polymer-based liposomes) fell within the range of lipid membrane measurements.
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Multiple Morphologies of "Crew-Cut" Aggregates of Polystyrene-b-poly(acrylic acid) Block Copolymers.

TL;DR: A needle-like solid is obtained on drying of aqueous solutions of the spherical micelles of the highly asymmetric polystyrene-poly-(acrylic acid) block copolymers prepared in a low molecular weight solvent system.
Journal ArticleDOI

Giant Wormlike Rubber Micelles

TL;DR: A low molecular weight poly(ethyleneoxide)-poly(butadiene) (PEO-PB) diblock copolymer containing 50 weight percent PEO forms gigantic wormlike micelles at low concentrations (<5 percent by weight) in water.
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