Nuttapol Risangud, Jittima Mama, Phichanat Iumsriwan, Rattanawadee Srioanchan, Chutidech Thongdeelerd, Tule Sirikitputtisak, Somprasong Thongkham
This work reports the development of photocurable hybrid resins based on methacrylated vanillin (MV) and glycidyl methacrylate-functionalized poly-(ε-caprolactone) (PCL-GMA) for high-resolution light-assisted 3D printing. FTIR and 1H NMR analyses confirmed successful methacrylation of vanillin and methacrylate end-group incorporation into PCL-GMA, ensuring efficient photopolymerization. Systematic variation of MV/PCL ratios enabled precise control over resin behavior. Cure-depth studies showed that increasing MV content somewhat enhanced photoreactivity. Notably, rheological measurements revealed low viscosities suitable for light-assisted 3D printing, decreasing from 1.55 Pa·s at low MV to 0.10 Pa·s in the MV: PEG system. The 3D-printed specimens exhibited excellent dimensional fidelity, with dimensional errors of 2-3% for cylindrical parts and only 1.17% in height and 1.21% in width for porous diamond lattices. TGA indicated increased thermal stability with higher MV incorporation, while mechanical testing showed significant improvements in modulus and compressive strength across the MV-rich formulations. Taken together, MV/PCL hybrid resins constitute a versatile, low-error, and biocompatible platform for precision liquid crystal display (LCD) based fabrication.