研究目的
Investigating the efficiency of yellow triazine (R-Cl) as a photoinitiator for polymerization and 3D printing under LEDs.
研究成果
R-Cl was found to be an efficient photoinitiator for the photopolymerization of a range of different monomers under LED illumination. It showed better photoinitiating ability than the commercial photoinitiator bisacylphosphine oxide in certain monomer systems. The study also revealed the optimum concentrations of R-Cl for efficient photopolymerization and 3D printing. The results indicate that R-Cl can be used as an efficient photoinitiator for 3D printing under LED@405 nm.
研究不足
The study focused on the photopolymerization of a specific set of monomers under LED illumination. The applicability of R-Cl in other monomer systems and under different light sources was not explored. Additionally, the study did not investigate the long-term stability and potential migration issues of R-Cl in cured samples.
1:Experimental Design and Method Selection:
The study involved the photopolymerization of various monomers using R-Cl as the photoinitiator under different LED wavelengths (400, 410, and 445 nm). The polymerization performance was evaluated based on the polymerization rate and final conversions.
2:Sample Selection and Data Sources:
A series of difunctional (meth)acrylate monomers were selected for the study. The physical parameters of the monomers, including viscosity and double bond concentrations, were considered.
3:List of Experimental Equipment and Materials:
The study utilized LEDs at different wavelengths (400, 410, and 445 nm) as the light source for polymerization. R-Cl was used as the photoinitiator.
4:Experimental Procedures and Operational Workflow:
The photopolymerization was conducted in laminate, and the conversion-time profiles were recorded. The effect of monomer properties on the performance of R-Cl was elucidated.
5:Data Analysis Methods:
The polymerization rates and final conversions were analyzed to determine the efficiency of R-Cl as a photoinitiator.
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