生物塑料
自愈水凝胶
生物降解
环境友好型
材料科学
纤维素
羧甲基纤维素
化学
有机化学
化学工程
废物管理
生态学
生物
工程类
钠
作者
Yujie Ke,Kai Lan,Jing Yi Wong,Hongfang Lu,Shujun Gao,Keunhyuk Ryu,Feng Chen,Wei Wei Loh,Zhili Dong,Jason Y. C. Lim,Zhaogang Dong,Xi Chen,Itamar Willner,Yuwei Hu
标识
DOI:10.1038/s41467-025-62682-1
摘要
Traditional petrochemical-derived plastics are challenging to recycle and degrade, and the existing (re)process methods are organic solvent-based and/or energy-intensive, resulting in significant environmental contamination and greenhouse gas emissions. This study presents a sustainable bioplastic material characterized by multi-closed-loop recyclability and water (re)processability. The bioplastics are derived from abundant polysaccharide sources of dextran, alginic acid, carboxymethyl cellulose, and DNA of plant and living organism waste. The process involves chemical oxidation of polysaccharides to produce aldehyde-functionalized derivatives, which subsequently form reversible imine covalent bonds with amine groups in DNA. This reaction yields water-processable polysaccharide/DNA crosslinked hydrogels, serving as raw materials for producing sustainable bioplastics. The bioplastic products exhibit (bio)degradability and recyclability, enabling aqueous recovery of the hydrogel constituents through plastic hydrolysis and the natural biodegradability of DNA and polysaccharides. These products demonstrate excellent resistance to organic solvents, self-healing, scalability, and effective processing down to nanometer scales, underscoring their potential for broad and versatile applications. The work provides potential pathways for advancing sustainable and environmentally friendly bioplastic materials.
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