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Abstract The optical, thermal, and chemical properties of glass make it an ideal material for use in a wide range of applications, from optics and chemistry reactionware to consumer products. Tomographic volumetric additive manufacturing (tVAM) creates 3D objects by selectively gelling material within a rotating vial of photo‐sensitive material by exposure to a series of tomographically‐determined images. Here, tVAM is investigated for fabrication of complex, centimeter‐scale, 3D silica glass parts. By optimizing the post‐processing procedure, fully‐dense glass parts with up to 2 cm 2 cross sectional area are achieved. The changes in optical properties during printing are leveraged for in situ metrology during printing, and the non‐Newtonian nature of the glass‐filled photoresin system to facilitate larger fabrication volumes via tiled projections. Printed structures are finally demonstrated for applications as MEMS components, optics, fluidics, and consumer products.
Beer et al. (Mon,) studied this question.