Rippled metamaterials with scale-dependent tailorable elasticity

J Jian Zhou R Richard Huang (Department of Physics) N Nicolaie Moldovan (Center for Nanoscale Materials) L Liliana Stan (Center for Nanoscale Materials) J Jianguo Wen (Center for Nanoscale Materials, Nanoscience and Technology Division) D Dafei Jin (Center for Nanoscale Materials) D David R. Nelson (Department of Physics) A Andrej Košmrlj D David A. Czaplewski (Center for Nanoscale Materials) D Daniel Lopez

Abstract

Thermally induced ripples are intrinsic features of nanometer-thick films, atomically thin materials, and cell membranes, significantly affecting their elastic properties. Despite decades of theoretical studies on the mechanics of suspended thermalized sheets, controversy still exists over the impact of these ripples, with conflicting predictions about whether elasticity is scale-dependent or scale-independent. Experimental progress has been hindered so far by the inability to have a platform capable of fully isolating and characterizing the effects of ripples. This knowledge gap limits the fundamental understanding of thin materials and their practical applications. Here, we show that thermal-like static ripples shape thin films into a class of metamaterials with scale-dependent, customizable elasticity. Utilizing a scalable semiconductor manufacturing process, we engineered nanometer-thick films with precisely controlled frozen random ripples, resembling snapshots of thermally fluctuating membranes. Resonant frequency measurements of rippled cantilevers reveal that random ripples effectively renormalize and enhance the average bending rigidity and sample-to-sample variations in a scale-dependent manner, consistent with recent theoretical estimations. The predictive power of the theoretical model, combined with the scalability of the fabrication process, was further exploited to create kirigami architectures with tailored bending rigidity and mechanical metamaterials with delayed buckling instability.

Article Details

Volume / Issue Vol. 122, Issue 12
Published March 25, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

J

Jian Zhou

R

Richard Huang

Department of Physics

N

Nicolaie Moldovan

Center for Nanoscale Materials

L

Liliana Stan

Center for Nanoscale Materials

J

Jianguo Wen

Center for Nanoscale Materials, Nanoscience and Technology Division

D

Dafei Jin

Center for Nanoscale Materials

D

David R. Nelson

Department of Physics

A

Andrej Košmrlj

D

David A. Czaplewski

Center for Nanoscale Materials

D

Daniel Lopez