Sereikaite Vilte, Navaruckiene Aukse, Jaras Justinas, Skliutas Edvinas, Ladika Dimitra, Gray David, Malinauskas Mangirdas, Talacka Vaidas, Ostrauskaite Jolita
Department of Polymer Chemistry and Technology, Kaunas University of Technology, Radvilenu Rd. 19, LT-50254 Kaunas, Lithuania.
Laser Research Center, Faculty of Physics, Vilnius University, Sauletekis Ave. 10, LT-10223 Vilnius, Lithuania.
Polymers (Basel). 2022 Dec 8;14(24):5361. doi: 10.3390/polym14245361.
A novel dual cure photopolymerizable system was developed by combining two plant-derived acrylic monomers, acrylated epoxidized soybean oil and vanillin dimethacrylate, as well as the thiol monomer pentaerythritol tetrakis (3-mercaptopropionate). Carefully selected resin composition allowed the researchers to overcome earlier stability/premature polymerization problems and to obtain stable (up to six months at 4 °C) and selectively-polymerizable resin. The resin demonstrated rapid photocuring without an induction period and reached a rigidity of 317.66 MPa, which was more than 20 times higher than that of the other vanillin-based polymers. Improved mechanical properties and thermal stability of the resulting cross-linked photopolymer were obtained compared to similar homo- and copolymers: Young's modulus reached 4753 MPa, the compression modulus reached 1634 MPa, and the temperature of 10% weight loss was 373 °C. The developed photocurable system was successfully applied in stereolithography and characterized with femtosecond pulsed two-beam initiation threshold measurement for the first time. The polymerization threshold of the investigated polymer was determined to be controlled by the sample temperature, making the footprint of the workstations cheaper, faster, and more reliable.
通过将两种植物衍生的丙烯酸单体(丙烯酸化环氧化大豆油和香草醛二甲基丙烯酸酯)以及硫醇单体季戊四醇四(3-巯基丙酸酯)相结合,开发了一种新型的双固化光聚合体系。精心选择的树脂组合物使研究人员能够克服早期的稳定性/过早聚合问题,并获得稳定的(在4°C下长达六个月)和可选择性聚合的树脂。该树脂表现出快速光固化且无诱导期,刚性达到317.66 MPa,比其他基于香草醛的聚合物高出20倍以上。与类似的均聚物和共聚物相比,所得交联光聚合物的机械性能和热稳定性得到改善:杨氏模量达到4753 MPa,压缩模量达到1634 MPa,10%重量损失温度为373°C。所开发的光固化体系成功应用于立体光刻,并首次通过飞秒脉冲双光束引发阈值测量进行了表征。研究确定所研究聚合物的聚合阈值受样品温度控制,这使得工作站的占地面积更便宜、速度更快且更可靠。