Emergence of a Persistent Surface-Normal Dynamical Mode in Planar Polymer Brushes

Abstract Polymer grafting affects chain relaxation dynamics in ways that can strongly influence the physical properties of polymer nanocomposites and surface layers. Here, we performed energy-conserving dissipative particle dynamics (eDPD) simulations with proper orthogonal decomposition (POD) to investigate the dominant relaxation modes of planar polymer brushes. While the dynamics parallel to the substrate remain largely consistent with classical Rouse behavior, the perpendicular dynamics collapse into a single persistent, surface-localized mode that remains remarkably robust across polymer chain lengths and grafting densities. We show that this mode can be represented by a localized exponential contribution together with a small number of low-order Rouse modes. While the spatial extent of the localized contribution increases with grafting density, the local strength of the graft-induced perturbation becomes approximately independent of grafting density once a brush is formed. Further analysis of the contour-resolved dynamical memory confirms that grafting produces increasingly anisotropic dynamics that extend farther along the polymer contour with increasing grafting density. These results provide a mechanistic framework for understanding how grafting reorganizes polymer dynamics and identify a surface-localized dynamical mode that may underlie the suppression of long-wavelength Rouse modes observed in neutron scattering experiments.

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Publication Details

Journal
ACS Macro Letters
Published
2026-09-18
DOI
https://doi.org/10.1021/acsmacrolett.6c00437
Primary Topic
Polymer Surface Interaction Studies
Type
article
Field-Weighted Citation Impact
0.00

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article

Emergence of a Persistent Surface-Normal Dynamical Mode in Planar Polymer Brushes

Michael J. A. Hore, Ankit Saha
ACS Macro Letters
Polymer Surface Interaction Studies
article

Emergence of a Persistent Surface-Normal Dynamical Mode in Planar Polymer Brushes

Michael J. A. Hore, Ankit Saha
article en

Abstract

Abstract Polymer grafting affects chain relaxation dynamics in ways that can strongly influence the physical properties of polymer nanocomposites and surface layers. Here, we performed energy-conserving dissipative particle dynamics (eDPD) simulations with proper orthogonal decomposition (POD) to investigate the dominant relaxation modes of planar polymer brushes. While the dynamics parallel to the substrate remain largely consistent with classical Rouse behavior, the perpendicular dynamics collapse into a single persistent, surface-localized mode that remains remarkably robust across polymer chain lengths and grafting densities. We show that this mode can be represented by a localized exponential contribution together with a small number of low-order Rouse modes. While the spatial extent of the localized contribution increases with grafting density, the local strength of the graft-induced perturbation becomes approximately independent of grafting density once a brush is formed. Further analysis of the contour-resolved dynamical memory confirms that grafting produces increasingly anisotropic dynamics that extend farther along the polymer contour with increasing grafting density. These results provide a mechanistic framework for understanding how grafting reorganizes polymer dynamics and identify a surface-localized dynamical mode that may underlie the suppression of long-wavelength Rouse modes observed in neutron scattering experiments.

ACS Macro Letters
Case Western Reserve University (US)
U.S. Department of Energy
Affordable and clean energy
Openalex Percentile: Top 25%
Polymer Surface Interaction Studies
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