生物塑料
纤维素
生物降解
生化工程
可再生能源
工艺工程
工作(物理)
废物管理
生物净化
材料科学
机械强度
原材料
纳米纤维素
化石燃料
环境污染
环境科学
高分子科学
环境友好型
可再生资源
制浆造纸工业
钥匙(锁)
计算机科学
作者
Xia Sun,Hao Sun,Jiaying Zhu,Xuanchen Liu,Zhengyang Yu,Yimin Mao,Wenshuai Chen,Feng Jiang
标识
DOI:10.1016/j.scib.2026.05.015
摘要
Celluplastic integrates multiscale cellulose structures to simultaneously achieve high mechanical performance, transparency, biodegradability, and closed-loop recyclability, overcoming key limitations of conventional bioplastics. Fossil plastics are versatile but generally cause serious pollution due to low recycling rates and non-degradability. Biodegradable bioplastics are eco-friendly, but they fall short in properties like stretchability and toughness. Moreover, the use of cross-linking agents and the need for costly reagents and complex procedures hinder their recyclability. Here, we introduce celluplastic, a sustainable bioplastic constructed from multiscale wood-derived microfibrillated cellulose network, dialcohol cellulose nanorods, and modified cellulose molecular chains. This hierarchical design enables celluplastic to match fossil plastics in terms of strength (>30 MPa), strain (>100%), transparency, and colorlessness, while outperforming other bioplastics. Importantly, celluplastic combines inherent biodegradability with straightforward aqueous closed-loop recyclability, demonstrated for over 100 cycles without substantial loss of performance. Our work establishes a scalable pathway for designing high-performance, circular bioplastics that retain fossil-plastic functionality with sustainable end-of-life solutions. This approach could accelerate the adoption of renewable materials in practical plastic applications.
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