Yijie Jin, Wei Xin Tan, Manjusha Joshi, Yasutaka Kuwahara, Shota Michida, Atsushi Isobe, Manabu Tanaka, Takuya Katashima, Masaya Fujita, Takuma Araki, Yuzo Suzuki, Yuichiro Otsuka, Naofumi Kamimura, Eiji Masai, Tsuyoshi Michinobu
2-Pyrone-4,6-dicarboxylic acid (PDC) is a lignin-derived biometabolic intermediate that serves as a versatile monomer for the development of sustainable polymers. In the present study, a bio-based polyesteramide, P-(PDC-BiOx), was successfully synthesized via the atom-economical ring-opening polyaddition of PDC and 2,2'-bis-(2-oxazoline). The thermal, crystalline, and mechanical properties of the resulting polymer were fully characterized, revealing a completely amorphous backbone with a fracture stress of 10.34 MPa. The marine biodegradability behavior was investigated under both surface and deep seawater conditions, demonstrating a clear correlation between material morphology and biodegradation rate. The experimental results demonstrated that, in surface seawater, the electrosprayed microparticles degraded more rapidly than the hot-pressed film, although both eventually reached a comparable extent of degradation. In comparison, in deep seawater, the electrosprayed microparticles achieved approximately 30% biodegradation within 45 days, which was higher than that of the hot-pressed film. Overall, PDC polyesteramides are promising biomass-derived polymers with straightforward accessibility and potential marine biodegradability.