Photopolymerization in 3D Printing
Фотополимеризация в 3D-печати
2019-02-20
SCID: 54.1/x44rhxw7
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digital light processingphotoinitiators with red-shifted absorptionphotopolymerizationreversible addition–fragmentation chain-transfer polymerizationstereolithography
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Abstract (AI)
The field of 3D printing is continuing its rapid development in both academic and industrial research environments. The development of 3D printing technologies has opened new implementations in rapid prototyping, tooling, dentistry, microfluidics, biomedical devices, tissue engineering, drug delivery, etc. Among different 3D printing techniques, photopolymerization-based process (such as stereolithography and digital light processing) offers flexibility over the final properties of the 3D printed materials (such as optical, chemical, and mechanical properties) using versatile polymer chemistry. The strategy behind the 3D photopolymerization is based on using monomers/oligomers in liquid state (in the presence of photoinitiators) that can be photopolymerized (via radical or cationic mechanism) upon exposure to light source of different wavelengths (depending on the photoinitiator system). An overview of recent evolutions in the field of photopolymerization-based 3D printing and highlights of novel 3D printable photopolymers is provided herein. Challenges that limit the use of conventional photopolymers (i.e., initiation under UV light) together with prospective solutions such as incorporation of photosensitive initiators with red-shifted absorptions are also discussed in detail. This review also spotlights recent progress on the use of controlled living radical photopolymerization techniques (i.e., reversible addition–fragmentation chain-transfer polymerization) in 3D printing, which will pave the way for widespread growth of new generations of 3D materials with living features and possibility for postprinting modifications.
Key Findings
1
Advances in photopolymerization-based 3D printing expand applications across prototyping, tooling, dentistry, microfluidics, biomedical devices, tissue engineering, and drug delivery.
2
Conventional photopolymers that require UV initiation face limitations, and incorporating photosensitive initiators with red-shifted absorption is a prospective solution.
3
Photopolymerization in 3D printing uses liquid monomers/oligomers with photoinitiators that polymerize via radical or cationic mechanisms upon light exposure at wavelengths determined by the photoinitiator.
4
Photopolymerization-based 3D printing (e.g., stereolithography, digital light processing) provides tunable optical, chemical, and mechanical properties via versatile polymer chemistry.
5
Recent developments include novel 3D-printable photopolymers and the application of controlled living radical photopolymerization (e.g., RAFT) in 3D printing enabling living features and postprinting modifications.
Research Object
Photopolymerization-based 3D printing processes and 3D printable photopolymers
Research Subject
Control and tailoring of final material properties and process capabilities via photopolymerization mechanisms (radical/cationic, including controlled living radical methods), photoinitiator selection (wavelength sensitivity/red-shifted absorptions), and formulations for improved printability and post-print modification
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2019-02-20
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