Separation of Surface Grafted Microparticles via Light and Temperature

Author:

Vasquez‐Muñoz Daniela1ORCID,Rohne Fabian1ORCID,Meier Isabel1ORCID,Braksch Cevin1,Lomadze Nino1,Heraji Esfahani Anahita2,Nitschke Anne2,Taubert Andreas2ORCID,Santer Svetlana1ORCID,Hartlieb Matthias23ORCID,Bekir Marek1ORCID

Affiliation:

1. Institute of Physics and Astronomy University of Potsdam Karl‐Liebknecht‐Str. 24‐25 14476 Potsdam Germany

2. Institute of Chemistry University of Potsdam Karl‐Liebknecht‐Str. 24‐25 14476 Potsdam Germany

3. Fraunhofer Institute for Applied Polymer Research (IAP) Geiselbergstraße 69 14476 Potsdam Germany

Abstract

Separation of equally sized particles distinguished solely by interfacial properties remains a highly challenging task. Herein, a particle fractioning method is proposed, which is suitable to differentiate between polymer‐grafted microparticles that are equal in size. The separation relies on the combination of a pressure driven microfluidic flow, together with simultaneous light illumination and temperature control. Heating the solution forces thermo‐responsive surface grafts to undergo a volume phase transition and therefore locally changing the interfacial properties of the microparticles. Light illumination induces the phoretic/osmotic activity of the microparticles and lifts them into a higher plane, where hovering particles experience a different shear stress proportional to the height. The light‐induced hovering height depends on the interfacial properties, and this complex interaction leads to different movements of the microparticles as a function of their surface grafting. The concepts are visualized in experimental studies, where the complex physical principle provides a simple method for fractioning a binary mixture with at least one thermo‐responsive polymer graft.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

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