On‐Chip Fabrication of Colloidal Suprastructures by Assembly and Supramolecular Interlinking of Microgels

Author:

Jung Se‐Hyeong12ORCID,Meyer Fabian12,Hörnig Sven12,Bund Michelle12,Häßel Bernhard23,Guerzoni Luis Paulo Busca2,De Laporte Laura234,Ben Messaoud Ghazi2,Centeno Silvia P.2,Pich Andrij125ORCID

Affiliation:

1. Functional and Interactive Polymers Institute of Technical and Macromolecular Chemistry Worringerweg 2 52074 Aachen Germany

2. DWI‐Leibniz Institute for Interactive Materials e.V. Forckenbeckstr. 50 52074 Aachen Germany

3. Advanced Materials for Biomedicine Institute of Technical and Macromolecular Chemistry RWTH Aachen University Worringerweg 2 52074 Aachen Germany

4. Institute for Applied Medical Engineering University Hospital RWTH Aachen Pauwelsstr. 30 52074 Aachen Germany

5. Aachen Maastricht Institute for Biobased Materials (AMIBM) Maastricht University Brightlands Chemelot Campus Urmonderbaan 22 RD Geleen 6167 The Netherlands

Abstract

AbstractIn this report, a versatile method is demonstrated to create colloidal suprastructures by assembly and supramolecular interlinking of microgels using droplet‐based microfluidics. The behavior of the microgels is systematically investigated to evaluate the influence of their concentration on their distribution between the continuous, the droplet phase, and the interface. At low concentrations, microgels are mainly localized at the water–oil interface whereas an excess of microgels results, following the complete coverage of the water–oil interface, in their distribution in the continuous phase. To stabilize the colloidal suprastructure, on‐chip gelation is introduced by adding natural polyphenol tannic acid (TA) in the water phase. TA forms interparticle linking between the poly(N‐vinylcaprolactam) (PVCL) microgels by supramolecular interactions. The combination of supramolecular interlinking with the variation of the microgel concentration in microfluidic droplets enables on‐chip fabrication of defined colloidal suprastructures with morphologies ranging from colloidosomes to colloidal supraballs. The obtained supracolloidal structures exhibit a pH‐responsive behavior with a disintegration at alkaline conditions within a scale of seconds. The destabilization process results from the deprotonation of phenolic groups and destruction of hydrogen bonds with PVCL chains at higher pH.

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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