Novel High‐Performance Glyoxylate Derivative‐Based Photoinitiators for Free Radical Photopolymerization and 3D Printing with Visible LED

Author:

Gao Tong12,Zhang Yijun12,Morlet‐Savary Fabrice12,Graff Bernadette12,Zhang Jing3,Xiao Pu4,Dumur Frédéric5,Lalevée Jacques12ORCID

Affiliation:

1. Université de Haute‐Alsace CNRS IS2M UMR7361 Mulhouse F‐68100 France

2. Université de Strasbourg France

3. Future Industries Institute University of South Australia Mawson Lakes SA 5095 Australia

4. State Key Laboratory of High Performance Ceramics and Superfine Microstructure Shanghai Institute of Ceramics Chinese Academy of Sciences Shanghai 200050 P. R. China

5. Aix Marseille Univ CNRS ICR, UMR 7273 Marseille F‐13397 France

Abstract

AbstractInvestigations concerning the glyoxylate moiety as a photocleavable functional group for visible light photoinitiators, particularly in the initiation of free radical photopolymerization remain limited. This study introduces nine innovative carbazole‐based ethyl glyoxylate derivatives (CEGs), which are synthesized and found to exhibit excellent photoinitiation abilities as monocomponent photoinitiating systems. Notably, these structures demonstrate robust absorption in the near‐UV/visible range, surpassing the commercial photoinitiators. Moreover, the newly developed glyoxylate derivatives show higher acrylate function conversions compared to a benchmark photoinitiator (MBF) in free radical photopolymerization. Elucidation of the photoinitiation mechanism of CEGs is achieved through a comprehensive analysis involving the decarboxylation reaction and electron spin resonance spin trapping. Furthermore, their practical utility is confirmed during direct laser writing and 3D printing processes, enabling the successful fabrication of 3D printed objects. This study introduces pioneering concepts and effective strategies in the molecular design of novel photoinitiators, showcasing their potential for highly advantageous applications in 3D printing.

Funder

China Scholarship Council

Publisher

Wiley

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