Related Experiment Video
Updated: Dec 25, 2025

Determining the Mechanical Strength of Ultra-Fine-Grained Metals
Published on: November 22, 2021
Plate-nanolattices at the theoretical limit of stiffness and strength
Cameron Crook1, Jens Bauer2, Anna Guell Izard3
1Department of Materials Science and Engineering, University of California, Irvine, CA, USA.
Abstract:
Though beam-based lattices have dominated mechanical metamaterials for the past two decades, low structural efficiency limits their performance to fractions of the Hashin-Shtrikman and Suquet upper bounds, i.e. the theoretical stiffness and strength limits of any isotropic cellular topology, respectively. While plate-based designs are predicted to reach the upper bounds, experimental verification has remained elusive due to significant manufacturing challenges. Here, we present a new class of nanolattices, constructed from closed-cell plate-architectures. Carbon plate-nanolattices are fabricated via two-photon lithography and pyrolysis and shown to reach the Hashin-Shtrikman and Suquet upper bounds, via in situ mechanical compression, nano-computed tomography and micro-Raman spectroscopy. Demonstrating specific strengths surpassing those of bulk diamond and average performance improvements up to 639% over the best beam-nanolattices, this study provides detailed experimental evidence of plate architectures as a superior mechanical metamaterial topology.
Related Concept Videos
Hooke's Law
Plastic Deformations
Plastic Deformations
Relation between Poisson's ratio, Modulus of Elasticity and Modulus of Rigidity
Yield Criteria for Ductile Materials under Plane Stress
The Maximum Shearing Stress Criterion, also known as...
Stress-Strain Diagram - Ductile Materials

