Single-digit-micrometer-resolution continuous liquid interface production
Nov 1, 2022·,,,,,
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0 min read
Kaiwen Hsiao
Brian J. Lee
Tim Samuelsen
Gabriel Lipkowitz
Jason M. Kronenfeld
Dan Ilyn

Audrey Shih
Maria T. Dulay
Lee Tate
Eric S. G. Shaqfeh
Joseph M. DeSimone
Abstract
To date, a compromise between resolution and print speed has rendered most high-resolution additive manufacturing technologies unscalable with limited applications. By combining a reduction lens optics system for single-digit-micrometer resolution, an in-line camera system for contrast-based sharpness optimization, and continuous liquid interface production (CLIP) technology for high scalability, we introduce a single-digit-micrometer-resolution CLIP-based 3D printer that can create millimeter-scale 3D prints with single-digit-micrometer-resolution features in just a few minutes. A simulation model is developed in parallel to probe the fundamental governing principles in optics, chemical kinetics, and mass transport in the 3D printing process. A print strategy with tunable parameters informed by the simulation model is adopted to achieve both the optimal resolution and the maximum print speed. Together, the high-resolution 3D CLIP printer has opened the door to various applications including, but not limited to, biomedical, MEMS, and microelectronics. A high-resolution CLIP 3D printer can rapidly and scalably fabricate 3D structures with single-digit-micrometer resolution.
Type
Publication
Science Advances