Kowalewska Ewelina, Ficek Mateusz, Formela Krzysztof, Zieliński Artur, Kunuku Srinivasu, Sawczak Miroslaw, Bogdanowicz Robert
Faculty of Electronics, Telecommunications and Informatics, Gdańsk University of Technology, 11/12 G, Narutowicza St., 80-233 Gdansk, Poland.
Academic Centre for Materials and Nanotechnology, AGH University of Science and Technology, 30 A, Mickiewicza Ave., 30-059 Krakow, Poland.
Nanomaterials (Basel). 2022 Jul 28;12(15):2604. doi: 10.3390/nano12152604.
Diamond particles have great potential to enhance the mechanical, optical, and thermal properties of diamond-polymer composites. However, the improved properties of diamond-polymer composites depend on the size, dispersibility, and concentration of diamond particles. In the present study, diamond-polymer composites were prepared by adding the microdiamond particles (MDPs) with different concentrations (0.2-1 wt.%) into polymers (acrylate resins) and then subjected to a photocuring process. The surface morphology and topography of the MDPs-polymer composites demonstrated a uniform high-density distribution of MDPs for one wt.% MPDs. Thermogravimetric analysis was employed to investigate the thermal stability of the MDPs-polymer composites. The addition of MDPs has significantly influenced the polymers' thermal degradation. Absorption and emission spectra of thin layers were recorded through UV/Vis spectrophotometry and spectrofluorimetry. The obtained results revealed a significant increase in the fluorescence intensity of MDPs-polymer composites (at 1 wt.% of MDPs, a 1.5×, 2×, and 5× increase in fluorescence was observed for MDPs-green, MDPs-amber daylight, and MDPs-red resin, respectively) compared with the reference polymer resins. The obtained results of this work show the new pathways in producing effective and active 3D-printed optical elements.
金刚石颗粒在增强金刚石-聚合物复合材料的机械、光学和热性能方面具有巨大潜力。然而,金刚石-聚合物复合材料性能的改善取决于金刚石颗粒的尺寸、分散性和浓度。在本研究中,通过将不同浓度(0.2-1 wt.%)的微米金刚石颗粒(MDPs)添加到聚合物(丙烯酸酯树脂)中,然后进行光固化工艺,制备了金刚石-聚合物复合材料。MDPs-聚合物复合材料的表面形态和形貌表明,对于1 wt.%的MPDs,MDPs呈现均匀的高密度分布。采用热重分析研究了MDPs-聚合物复合材料的热稳定性。MDPs的添加对聚合物的热降解有显著影响。通过紫外/可见分光光度法和荧光分光光度法记录了薄层的吸收光谱和发射光谱。所得结果表明,与参考聚合物树脂相比,MDPs-聚合物复合材料的荧光强度显著增加(在1 wt.%的MDPs时,MDPs-绿色、MDPs-琥珀色日光和MDPs-红色树脂的荧光分别增加了1.5倍、2倍和5倍)。这项工作的所得结果展示了生产有效且活性的3D打印光学元件的新途径。