Selective Colloid Transport across Planar Polymer Brushes

Author:

Laktionov Mikhail Y.1,Zhulina Ekaterina B.2,Klushin Leonid23,Richter Ralf P.4ORCID,Borisov Oleg V.125ORCID

Affiliation:

1. ITMO University 49 Kronverksky Prospekt Saint Petersburg 197101 Russia

2. Institute of Macromolecular Compounds Russian Academy of Sciences 31 Bolshoy Prospect Saint Petersburg 199004 Russia

3. Department of Physics American University of Beirut P.O. Box 11‐0236 Beirut 1107 2020 Lebanon

4. School of Biomedical Sciences Faculty of Biological Sciences School of Physics and Astronomy Faculty of Engineering and Physical Sciences Astbury Centre for Structural Molecular Biology, and Bragg Centre for Materials Research University of Leeds Leeds LS2 9JT UK

5. CNRS Institut des Sciences Analytiques et de Physico‐Chimie pour l'Environnement et les Matériaux University of Pau et des Pays de l'Adour UMR 5254 Pau 64053 France

Abstract

AbstractPolymer brushes are attractive as surface coatings for a wide range of applications, from fundamental research to everyday life, and also play important roles in biological systems. How colloids (e.g., functional nanoparticles, proteins, viruses) bind and move across polymer brushes is an important yet under‐studied problem. A mean‐field theoretical approach is presented to analyze the binding and transport of colloids in planar polymer brushes. The theory explicitly considers the effect of solvent strength on brush conformation and of colloid‐polymer affinity on colloid binding and transport. The position‐dependent free energy of the colloid insertion into the polymer brush which controls the rate of colloid transport across the brush is derived. It is shown how the properties of the brush can be adjusted for brushes to be highly selective, effectively serving as tuneable gates with respect to colloid size and affinity to the brush‐forming polymer. The most important parameter regime simultaneously allowing for high brush permeability and selectivity corresponds to a condition when the repulsive and attractive contributions to the colloid insertion free energy nearly cancel. This theory should be useful to design sensing and purification devices with enhanced selectivity and to better understand mechanisms underpinning the functions of biological polymer brushes.

Funder

Russian Foundation for Basic Research

Royal Society

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,Organic Chemistry

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