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Quantifying the Interactions in the Aggregation of Thermoresponsive Polymers: The Effect of Cononsolvency

  • The aggregation kinetics of thermoresponsive core-shell micelles with a poly(N-isopropyl acrylamide) shell in pure water or in mixtures of water with the cosolvents methanol or ethanol at mole fractions of 5% is investigated during a temperature jump across the respective cloud point. Characteristically, these mixtures give rise to cononsolvency behavior. At the cloud point, aggregates are formed, and their growth is followed with time-resolved small-angle neutron scattering. Using the reversible association model, the interaction potential between the aggregates is determined from their growth rate in dependence on the cosolvents. The effect of the cosolvent is attributed to the interaction potential on the structured layer of hydration water around the aggregates. It is surmised that the latter is perturbed by the cosolvent and thus the residual repulsive hydration force between the aggregates is reduced. The larger the molar volume of the cosolvent, the more pronounced is the effect. This framework provides a molecular-levelThe aggregation kinetics of thermoresponsive core-shell micelles with a poly(N-isopropyl acrylamide) shell in pure water or in mixtures of water with the cosolvents methanol or ethanol at mole fractions of 5% is investigated during a temperature jump across the respective cloud point. Characteristically, these mixtures give rise to cononsolvency behavior. At the cloud point, aggregates are formed, and their growth is followed with time-resolved small-angle neutron scattering. Using the reversible association model, the interaction potential between the aggregates is determined from their growth rate in dependence on the cosolvents. The effect of the cosolvent is attributed to the interaction potential on the structured layer of hydration water around the aggregates. It is surmised that the latter is perturbed by the cosolvent and thus the residual repulsive hydration force between the aggregates is reduced. The larger the molar volume of the cosolvent, the more pronounced is the effect. This framework provides a molecular-level understanding of solvent-mediated effective interactions in polymer solutions and new opportunities for the rational control of self-assembly in complex soft matter systems.show moreshow less

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Author details:Konstantinos Kyriakos, Martine Philipp, Che-Hung Lin, Margarita Dyakonova, Natalya Vishnevetskaya, Isabelle Grillo, Alessio Zaccone, Anna Miasnikova, Andre LaschewskyORCiDGND, Peter Mueller-Buschbaum, Christine M. PapadakisORCiDGND
DOI:https://doi.org/10.1002/marc.201500583
ISSN:1022-1336
ISSN:1521-3927
Pubmed ID:https://pubmed.ncbi.nlm.nih.gov/26776153
Title of parent work (English):Macromolecular rapid communications
Publisher:Wiley-VCH
Place of publishing:Weinheim
Publication type:Article
Language:English
Year of first publication:2016
Publication year:2016
Release date:2020/03/22
Tag:colloidal aggregation; cononsolvency; interaction potential; polymer solutions; self-assembled micelles; thermoresponsive polymers
Volume:37
Number of pages:6
First page:420
Last Page:425
Funding institution:DFG [SPP1259, Pa771/4, Mu1487/8, La611/7]
Organizational units:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Chemie
Peer review:Referiert
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