Geometrical factors govern ballistic energy dissipation of polymeric nanoscale thin films

Abstract

The design of materials with enhanced resistance to impact and shock deformation is critical for numerous technological applications. This work investigates energy dissipation mechanisms in ballistic impacts on nanoscale polymer thin films through molecular dynamics simulations and theoretical modeling. Using a pseudo-continuous model for polymer chain generation followed by Kremer–Grest potential relaxation, we systematically study the effects of impact velocity, projectile radius, and film thickness for various polymer chain lengths. Our findings reveal that traditional kinetic impact models are insufficient to describe the observed energy dissipation. We propose an improved model incorporating an energy dissipation term that scales with the cylindrical hole area created during impact, characterized by a single fitting parameter β, that encapsulates shear-dependent deformation and failure mechanisms. This model accurately predicts energy dissipation across both low and high-velocity regimes and shows that energy dissipation scales linearly with film thickness at the nanoscale.

Graphical abstract: Geometrical factors govern ballistic energy dissipation of polymeric nanoscale thin films

Transparent peer review

To support increased transparency, we offer authors the option to publish the peer review history alongside their article.

View this article’s peer review history

Article information

Article type
Paper
Submitted
18 Jun 2025
Accepted
14 Oct 2025
First published
15 Oct 2025
This article is Open Access
Creative Commons BY license

Soft Matter, 2025, Advance Article

Geometrical factors govern ballistic energy dissipation of polymeric nanoscale thin films

L. Ortellado, N. A. García, G. Catalini, J. Barrat and L. R. Gómez, Soft Matter, 2025, Advance Article , DOI: 10.1039/D5SM00618J

This article is licensed under a Creative Commons Attribution 3.0 Unported Licence. You can use material from this article in other publications without requesting further permissions from the RSC, provided that the correct acknowledgement is given.

Read more about how to correctly acknowledge RSC content.

Social activity

Spotlight

Advertisements