Xolography for Rapid Volumetric Production of Objects from the Nanoscopic to Macroscopic Length Scales

X Xichuan Li (Cluster for Advanced Macromolecular Design (CAMD) and Australian Centre for Nanomedicine (ACN) School of Chemical Engineering University of New South Wales Sydney NSW Australia) Y Yuan Xiu (Cluster for Advanced Macromolecular Design (CAMD) and Australian Centre for Nanomedicine (ACN) School of Chemical Engineering University of New South Wales Sydney NSW Australia) K Kenny Lee J Jin Zhang N Nathaniel Corrigan (Centre for Advanced Manufacturing Technology (CfAMT) School of Engineering Western Sydney University Sydney NSW Australia) C Cyrille Boyer (School of Chemical Engineering)

Abstract

Abstract Light‐mediated 3D printing has revolutionized additive manufacturing, progressing from pointwise stereolithography, to layer‐by‐layer digital light processing, and most recently to volumetric 3D printing. Xolography, a novel light‐sheet‐based volumetric 3D printing approach, offers high‐speed and high‐precision fabrication of complex geometries unattainable with traditional methods. However, achieving nanoscale control (<100 nm) within these 3D printing systems remains unexplored. This work leverages polymerization‐induced microphase separation (PIMS) within the xolography process to prepare network polymer materials with simultaneous control over feature sizes at the nano‐, micro‐, and macro‐scale. By controlling the chain length and mass fraction of macromolecular chain transfer agents used in the PIMS process, precise manipulation of nanodomain size within 3D printed materials is demonstrated, while optimization of the other resin components enables the fabrication of rigid materials with feature sizes of 80 µm. Critically, the rapid one‐step fabrication of complex and multi‐component structures such as a functional waterwheel with interlocking parts, at high volume‐building rates is showcased. This combined approach expands the design space for functional nanomaterials, opening new avenues for applications in diverse fields such as polymer electrolyte membranes, biomedical delivery systems, and semi‐permeable microcapsules.

Article Details

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

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (6)

X

Xichuan Li

Cluster for Advanced Macromolecular Design (CAMD) and Australian Centre for Nanomedicine (ACN) School of Chemical Engineering University of New South Wales Sydney NSW Australia

Y

Yuan Xiu

Cluster for Advanced Macromolecular Design (CAMD) and Australian Centre for Nanomedicine (ACN) School of Chemical Engineering University of New South Wales Sydney NSW Australia

K

Kenny Lee

J

Jin Zhang

N

Nathaniel Corrigan

Centre for Advanced Manufacturing Technology (CfAMT) School of Engineering Western Sydney University Sydney NSW Australia

C

Cyrille Boyer

School of Chemical Engineering