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Published on: March 8, 2019
3D Printing of Mechanically Robust Elastomers: Molecular Design and Fabrication with Urea-Containing Photocurable
Guohong Shi1,2, Jiexiang Tong1,2, Ren Liu1,2
1Key Laboratory of Synthetic and Biological Colloids, Ministry of Education, School of Chemical and Material Engineering, Jiangnan University Wuxi, Jiangsu 214122, China.
Abstract:
The mechanical properties of UV-cured elastomers for digital light processing (DLP) 3D printing are essential for their practical applications. However, it remains challenging for printed elastomers to achieve both a high mechanical strength and excellent ductility. In this work, a series of novel photocurable monomers containing urea groups were synthesized via a simple one-step method and then used to fabricate mechanically robust elastomers through DLP 3D printing. The UV-cured elastomer systems showed high photopolymerization activity, which was compatible with the DLP 3D printing process. The as-prepared elastomers exhibited a high elongation at break (326%) while maintaining a high mechanical strength (20.7 MPa). The robust mechanical performances are attributed to the presence of urea groups in the molecular structure of photocurable monomers, which could act as physical cross-linking points to effectively dissipate the mechanical energy. In addition, the honeycomblike elastomers printed by DLP printing demonstrated excellent energy absorption capacity and could support a heavy weight (480 times their own weight) without any collapse. This study provides a simple and effective strategy for preparing mechanically robust elastomers for DLP-3D printing.
