Holographic tomographic volumetric additive manufacturing

M Maria Isabel Álvarez-Castaño A Andreas Gejl Madsen J Jorge Madrid-Wolff V Viola Sgarminato A Antoine Boniface J Jesper Glückstad C Christophe Moser

Abstract

Abstract Several 3D light-based printing technologies have been developed that rely on the photopolymerization of liquid resins. A recent method, so-called Tomographic Volumetric Additive Manufacturing, allows the fabrication of microscale objects within tens of seconds without the need for support structures. This method works by projecting intensity patterns, computed via a reverse tomography algorithm, into a photocurable resin from different angles to produce a desired 3D shape when the resin reaches the polymerization threshold. Printing using incoherent light patterning has been previously demonstrated. In this work, we show that a light engine with holographic phase modulation unlocks new potential for volumetric printing. The light projection efficiency is improved by at least a factor 20 over amplitude coding with diffraction-limited resolution and its flexibility allows precise light control across the entire printing volume. We show that computer-generated holograms implemented with tiled holograms and point-spread-function shaping mitigates the speckle noise which enables the fabrication of millimetric 3D objects exhibiting negative features of 31 μm in less than a minute with a 40 mW light source in acrylates and scattering materials, such as soft cell-laden hydrogels, with a concentration of 0.5 million cells per mL.

Article Details

Volume / Issue Vol. 16, Issue 1
Published February 11, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (7)

M

Maria Isabel Álvarez-Castaño

A

Andreas Gejl Madsen

J

Jorge Madrid-Wolff

V

Viola Sgarminato

A

Antoine Boniface

J

Jesper Glückstad

C

Christophe Moser