General inverse-cube thickness scaling of projectile penetration energy in ultrathin films
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
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (2)
Alessio Zaccone
Department of Physics “A. Pontremoli”, University of Milan
Timothy W. Sirk
Polymers Branch, DEVCOM Army Research Laboratory, Aberdeen Proving Ground