材料科学
生物塑料
石油化工
压缩成型
热稳定性
纤维素
弹性(材料科学)
极限抗拉强度
相容性(地球化学)
造型(装饰)
复合材料
环境污染
抗弯强度
超分子化学
纳米复合材料
耐热性
航空航天
稳健性(进化)
耐化学性
弹性体
热变形温度
纳米技术
复配
纳米材料
弯曲模量
牛皮纸
作者
Jingcai Li,Geyuan Jiang,Suqing Zeng,Minxin Wang,Haipeng Yu,Dawei Zhao
摘要
The widespread use of petrochemical plastics has made environmental problems and health risks increasingly prominent. While bioplastics hold promise as alternatives, their limited heat resistance and shaping capabilities hinder widespread adoption in high-performance engineering. Here, we present an innovative supramolecular network that utilizes cellulose as a molecular framework, complemented by acrylamide molecules for in situ polymerization. By applying ethanol for structural reconstruction, we create a self-reinforcing bioplastic (S-bioplastic) with a tensile strength of 76 MPa and a flexural modulus of 4.7 GPa. This S-bioplastic supports multiple molding techniques-such as injection and compression molding-and exhibits remarkable environmental adaptability, with thermal stability up to 180°C and low-temperature resilience to -196°C. Compared to conventional plastics, S-bioplastic offers enhanced mechanical properties, biocompatibility, biodegradability, and recyclability, achieving a 95% retention of strength. A techno-economic analysis underscores its value proposition. This research highlights a method for converting bamboo-based materials into high-value bioplastics, providing a promising strategy to address plastic pollution while developing lightweight, high-performance materials for aerospace applications.
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