3D Printed Materials with Nanovoxelated Elastic Moduli

P Peter L. H. Newman (The School of Biomedical Engineering The University of Sydney Sydney Australia) M Mohammad Mirkhalaf (School of Mechanical Medical and Process Engineering Queensland University of Technology 2 George St Brisbane QLD 4000 Australia) S Steven C. Gauci (School of Chemistry and Physics Centre for Materials Science Queensland University of Technology (QUT) 2 George Street Brisbane QLD 4000 Australia) I Iman Roohani (School of Biomedical Engineering Faculty of IT and Engineering University of Technology Sydney Sydney NSW 2007 Australia) M Maté Biro (EMBL Australia Single Molecule Science node School of Biomedical Sciences University of New South Wales Sydney NSW 2052 Australia) C Christopher Barner‐Kowollik (Soft Matter Materials Laboratory School of Chemistry and Physics Queensland University of Technology (QUT) Brisbane Queensland Australia) H Hala Zreiqat

Abstract

Abstract Fabrication methods that synthesize materials with higher precision and complexity at ever smaller scales are rapidly developing. Despite such advances, generating complex 3D materials with controlled mechanical properties at the nanoscale remains challenging. Exerting precise control over mechanical properties at the nanoscale would enable material strengths near theoretical maxima, and the replication of natural structures with hitherto unattainable strength‐to‐weight ratios. Here, a method for fabricating materials with nanovoxelated elastic moduli by employing a volume‐conserving photoresist composed of a copolymer hydrogel, along with OpenScribe, an open‐source software that enables the precise programming of material mechanics, is presented. Combining these, a material composed of periodic unit cells featuring heteromechanically tessellated soft‐stiff structures, achieving a mechanical transition over an order‐of‐magnitude change in elastic modulus within 770 nm, a 130‐fold improvement on previous reports, is demonstrated. This work critically advances material design and opens new avenues for fabricating materials with specifically tailored properties and functionalities through unparalleled control over nanoscale mechanics.

Article Details

Volume / Issue Vol. 37, Issue 15
Published April 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (7)

P

Peter L. H. Newman

The School of Biomedical Engineering The University of Sydney Sydney Australia

M

Mohammad Mirkhalaf

School of Mechanical Medical and Process Engineering Queensland University of Technology 2 George St Brisbane QLD 4000 Australia

S

Steven C. Gauci

School of Chemistry and Physics Centre for Materials Science Queensland University of Technology (QUT) 2 George Street Brisbane QLD 4000 Australia

I

Iman Roohani

School of Biomedical Engineering Faculty of IT and Engineering University of Technology Sydney Sydney NSW 2007 Australia

M

Maté Biro

EMBL Australia Single Molecule Science node School of Biomedical Sciences University of New South Wales Sydney NSW 2052 Australia

C

Christopher Barner‐Kowollik

Soft Matter Materials Laboratory School of Chemistry and Physics Queensland University of Technology (QUT) Brisbane Queensland Australia

H

Hala Zreiqat