Kim Bo Min, Choi Jin Sil, Jang Sunjin, Park Hyeji, Lee Seung Yeol, Jung Joonhoo, Park Jaehyeung
Department of Carbon and Fiber Composite Materials, Kyungpook National University, Daegu 41566, Republic of Korea.
Department of Plant Medicine, Kyungpook National University, Daegu 41566, Republic of Korea.
Polymers (Basel). 2023 Oct 4;15(19):3987. doi: 10.3390/polym15193987.
In this study, we introduce a novel approach for synthesizing lignin-incorporated castor-oil-based cationic waterborne polyurethane (CWPU-LX), diverging significantly from conventional waterborne polyurethane dispersion synthesis methods. Our innovative method efficiently reduces the required solvent quantity for CWPU-LX synthesis to approximately 50% of that employed in traditional WBPU experimental procedures. By incorporating lignin into the polyurethane matrix using this efficient and reduced-solvent method, CWPU-LX demonstrates enhanced properties, rendering it a promising material for diverse applications. Dynamic interactions between lignin and polyurethane molecules contribute to improved mechanical properties, enhanced thermal stability, and increased solvent resistance. Dynamic interactions between lignin and polyurethane molecules contribute to improved tensile strength, up to 250% compared to CWPU samples. Furthermore, the inclusion of lignin enhanced thermal stability, showcasing a 4.6% increase in thermal decomposition temperature compared to conventional samples and increased solvent resistance to ethanol. Moreover, CWPU-LX exhibits desirable characteristics such as protection against ultraviolet light and antibacterial properties. These unique properties can be attributed to the presence of the polyphenolic group and the three-dimensional structure of lignin, further highlighting the versatility and potential of this material in various application domains. The integration of lignin, a renewable and abundant resource, into CWPU-LX exemplifies the commitment to environmentally conscious practices and underscores the significance of greener materials in achieving a more sustainable future.
在本研究中,我们引入了一种合成木质素掺入蓖麻油基阳离子水性聚氨酯(CWPU-LX)的新方法,这与传统的水性聚氨酯分散体合成方法有显著不同。我们的创新方法有效地将CWPU-LX合成所需的溶剂量减少到传统水性聚氨酯实验程序中所用溶剂量的约50%。通过使用这种高效且减少溶剂的方法将木质素掺入聚氨酯基体中,CWPU-LX展现出增强的性能,使其成为一种有前途的用于多种应用的材料。木质素与聚氨酯分子之间的动态相互作用有助于改善机械性能、增强热稳定性并提高耐溶剂性。木质素与聚氨酯分子之间的动态相互作用有助于提高拉伸强度,与CWPU样品相比提高了250%。此外,木质素的加入增强了热稳定性,与传统样品相比热分解温度提高了4.6%,并且提高了对乙醇的耐溶剂性。此外,CWPU-LX具有诸如抗紫外线和抗菌性能等理想特性。这些独特性能可归因于多酚基团的存在和木质素的三维结构,进一步突出了这种材料在各个应用领域的多功能性和潜力。将木质素这种可再生且丰富的资源整合到CWPU-LX中,体现了对环保实践的承诺,并强调了更绿色材料在实现更可持续未来方面的重要性。