General inverse-cube thickness scaling of projectile penetration energy in ultrathin films

A Alessio Zaccone (Department of Physics “A. Pontremoli”, University of Milan) T Timothy W. Sirk (Polymers Branch, DEVCOM Army Research Laboratory, Aberdeen Proving Ground)

Abstract

Ultrathin films of widely different materials exhibit a dramatic enhancement of projectile penetration resistance under high–velocity impact. Despite extensive simulations and experiments, a unifying physical explanation has remained elusive. Here we show that the specific penetration energy follows a general inverse-cube scaling law, E p ∗ ( h ) = E p , ∞ ∗ + B h − 3 , across chemically and structurally distinct systems. The inverse–cube scaling is traced to a finite–size correction to the effective shear modulus caused by suppression of long–wavelength nonaffine modes. The scaling describes impact data for multilayer graphene, graphene oxide, and polymer thin films, revealing a common elastic contribution to nanoscale impact resistance.

Article Details

Volume / Issue Vol. 123, Issue 24
Published June 16, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (2)

A

Alessio Zaccone

Department of Physics “A. Pontremoli”, University of Milan

T

Timothy W. Sirk

Polymers Branch, DEVCOM Army Research Laboratory, Aberdeen Proving Ground