Comparing simulated and synthesized polymer brush profiles

B Bhuwan Poudel (Polymer Theory, Max-Planck-Institute for Polymer Research 1 , Ackermannweg 10, 55128 Mainz,) P Philipp Ritzert (Soft Matter at Interfaces, Department of Physics, Technical University Darmstadt 2 , Hochschulstraße 8, 64289 Darmstadt,) H Hayden Robertson (Soft Matter at Interfaces, Department of Physics, Technical University Darmstadt 2 , Hochschulstraße 8, 64289 Darmstadt,) O Olaf Soltwedel (Soft Matter at Interfaces, Department of Physics, Technical University Darmstadt 2 , Hochschulstraße 8, 64289 Darmstadt,) B Ben Humphreys (Institut Laue-Langevin 3 , 71 Avenue des Martyrs, CS 20156, 38042 Grenoble cedex 9,) M Manmeet Kaur Sodhi (Institut Laue-Langevin 3 , 71 Avenue des Martyrs, CS 20156, 38042 Grenoble cedex 9,) K Kurt Kremer (Max Planck Institute for Polymer Research 1 , Ackermannweg 10, 55128 Mainz,) R Regine von Klitzing (Institute for Condensed Matter Physics, Technical University of Darmstadt 4 , 64289 Darmstadt,)

Abstract

Herein, the conformation of planar polymer brushes of varying chain length and grafting density is investigated, comparing experiments with molecular dynamics (MD) simulations. The grafting densities investigated cover a wide range: from the mushroom regime to a dense brush. Experimentally, poly(ethylene glycol)methylethermethacrylate (MN = 300) based polymer brushes were synthesized by atom transfer radical polymerization. The conformation was characterized by neutron reflectometry. At room temperature, below the lower critical solution temperature, the extracted polymer density profiles reveal a stretched conformation that becomes more pronounced with increasing grafting density. The presented MD simulations employ a new approach to “synthesize” polymer chains from the grafting surface. Chains can only grow when a free monomer approaches an active chain-end, analogous to the experimental synthesis. The resulting polymer brushes exhibit a more stretched polymer conformation, differing significantly from the usual monodisperse case. The thereby induced intrinsic polydispersity increases with increasing grafting density due to chain crowding during growth. For the first time, experimentally acquired polymer volume fraction profiles, in a good solvent, are matched to those of MD-simulated brushes by comparing grafting density lengths. Normalized profiles show very good agreement between experiments and simulations, even reproducing the extent of stretching.

Article Details

Volume / Issue Vol. 163, Issue 17
Published November 07, 2025
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (8)

B

Bhuwan Poudel

Polymer Theory, Max-Planck-Institute for Polymer Research 1 , Ackermannweg 10, 55128 Mainz,

P

Philipp Ritzert

Soft Matter at Interfaces, Department of Physics, Technical University Darmstadt 2 , Hochschulstraße 8, 64289 Darmstadt,

H

Hayden Robertson

Soft Matter at Interfaces, Department of Physics, Technical University Darmstadt 2 , Hochschulstraße 8, 64289 Darmstadt,

O

Olaf Soltwedel

Soft Matter at Interfaces, Department of Physics, Technical University Darmstadt 2 , Hochschulstraße 8, 64289 Darmstadt,

B

Ben Humphreys

Institut Laue-Langevin 3 , 71 Avenue des Martyrs, CS 20156, 38042 Grenoble cedex 9,

M

Manmeet Kaur Sodhi

Institut Laue-Langevin 3 , 71 Avenue des Martyrs, CS 20156, 38042 Grenoble cedex 9,

K

Kurt Kremer

Max Planck Institute for Polymer Research 1 , Ackermannweg 10, 55128 Mainz,

R

Regine von Klitzing

Institute for Condensed Matter Physics, Technical University of Darmstadt 4 , 64289 Darmstadt,