The Impact of Polymer Architecture on Polyion Complex (PIC) Micelles: When Topology Matters (and When It Doesn't)

Publication date

2022-11

Authors

Li, Chendan
van Ravensteijn, Bas G.P.ISNI 000000038783785X
Stuart, Martien A.Cohen
Magana, José Rodrigo
Voets, Ilja K.

Editors

Advisors

Supervisors

Document Type

Article
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License

cc_by_nc_nd

Abstract

The influence of homopolymer architecture on the properties of polyion complex micelles is reported. Using a combination of dynamic and static light scattering, the authors show how the architecture is only relevant in kinetically trapped states of micelles formed by the electrostatic assembly of poly(N-isopropyl acrylamide-block-styrene sulfonate) (p(NIPAM-b-SS) and linear, 4-arm, 8-arm star quaternized poly(dimethyl amino ethyl acrylate) (PDMAEA) homopolymers or poly(amidoamine) (PAMAM) dendrimers. Interestingly, the micellar size and the aggregation number in these kinetically arrested states follow a clear trend with the number of arms but differ in the case of dendrimers possibly due to the distinct chemical nature of the monomers. The authors show that if the micelles are prepared in a weak polyelectrolyte pairing regime (i.e., high ionic strength), they all converge into similar structures. The presented findings represent a new way of controlling the properties of polyion complex micelles through kinetically trapped states.

Keywords

block copolymers, complex coacervate core micelles, dendrimers, kinetic trapping, polyelectrolytes, polyion complex micelles, self-assembly, Condensed Matter Physics, Physical and Theoretical Chemistry, Polymers and Plastics, Organic Chemistry, Materials Chemistry

Citation

Li, C, van Ravensteijn, B G P, Stuart, M A C, Magana, J R & Voets, I K 2022, 'The Impact of Polymer Architecture on Polyion Complex (PIC) Micelles : When Topology Matters (and When It Doesn't)', Macromolecular Chemistry and Physics, vol. 223, no. 21, 2200195, pp. 1-5. https://doi.org/10.1002/macp.202200195