Key Laboratory of Wood Material Science and Application (Beijing Forestry University), Ministry of Education, Beijing 100083, China; Beijing Key Laboratory of Wood Science and Engineering, Beijing Forestry University, Beijing 100083, China.
Key Laboratory of Wood Material Science and Application (Beijing Forestry University), Ministry of Education, Beijing 100083, China; Beijing Key Laboratory of Wood Science and Engineering, Beijing Forestry University, Beijing 100083, China.
Int J Biol Macromol. 2024 Nov;279(Pt 1):134803. doi: 10.1016/j.ijbiomac.2024.134803. Epub 2024 Aug 29.
Achieving interfacial compatibility through sustainable methods is a key objective in natural fiber-plastic composites research, aimed at optimizing mechanical performance. This study introduced an innovative organic bamboo-plastic composite (BPC) interfacial layer, incorporating O-acylated chitin fibers densely coated with polydopamine (PDA) via a mild and facile self-assembly method. Chitin nanofibers were acylated with dodecenylsuccinic anhydride in a deep eutectic solvent in a one-pot process. The resulting BPCs exhibited significantly enhanced mechanical properties, with tensile strength, flexural strength, modulus, and impact strength increased by 73.64 %, 39.19 %, 15.42 %, and 63.57 %, respectively, compared to untreated BPCs. This improvement highlights the effectiveness of tailoring cross-linked networks across heterogeneous interfaces in providing strength, dissipating strain, and promoting interfacial compatibility. Furthermore, these modified BPCs demonstrated enhanced thermal stability, crystallization behavior, and moderate hydrophobicity. This surface treatment strategy offers a distinctive approach to producing high-performance, eco-friendly BPCs, also facilitating the processing and utilization of marine biological resources on a wide scale.
通过可持续的方法实现界面兼容性是天然纤维-塑料复合材料研究的一个关键目标,旨在优化机械性能。本研究介绍了一种创新的有机竹塑复合材料(BPC)界面层,通过温和简便的自组装方法,将密集涂覆有多巴胺(PDA)的 O-酰化壳聚糖纤维纳入其中。壳聚糖纳米纤维在深共晶溶剂中通过一锅法与十二烯基琥珀酸酐进行酰化。与未处理的 BPC 相比,所得 BPC 的力学性能显著提高,拉伸强度、弯曲强度、模量和冲击强度分别提高了 73.64%、39.19%、15.42%和 63.57%。这种改进突出了在异质界面上定制交联网络以提供强度、耗散应变和促进界面兼容性的有效性。此外,这些改性 BPC 表现出增强的热稳定性、结晶行为和适度的疏水性。这种表面处理策略为生产高性能、环保的 BPC 提供了一种独特的方法,同时也促进了海洋生物资源的广泛加工和利用。