生物塑料
纤维素
微尺度化学
废物管理
复合材料
原材料
木质素
化学
材料科学
有机化学
化学工程
工程类
数学教育
数学
作者
Jing Zhou,Muqiu You,Jinhao Xu,Yongcan Jin,Dagang Li,Zhaoyang Xu,Chuchu Chen
出处
期刊:ACS Sustainable Chemistry & Engineering
[American Chemical Society]
日期:2024-06-13
卷期号:12 (25): 9550-9557
标识
DOI:10.1021/acssuschemeng.4c03425
摘要
The concerning accumulation of nonbiodegradable plastic films in the environment and the associated risks have prompted a vigorous quest for biobased degradable substitutes. However, creating biomass-based plastics with a combination of high mechanical strength, water resistance, and rapid degradation in a natural environment presents a great challenge. Herein, we report a facile method to develop high-performance all-cellulose bioplastics from waste wood particles by low-energy microfibrillation and simple oxidation. The resulting oxidized all-cellulose microfiber films (OCMFs) containing a densely packed microscale fiber network structure simultaneously achieve high light transmittance (≈85.1%), low haze (≈6%), and notably high wet strength (≈32.34 MPa), superior to those of typical cellulose nanofiber films with inherent high hydrophilicity. Moreover, the thickness of OCMF can be easily regulated via a self-adhesive lamination approach, overcoming the limited film thickness formed by vacuum filtration. Coupled with low-valuable waste raw materials, all-cellulose components, low-energy microscale fabrication, and high optical clarity and water resistance, the proposed OCMF proves its bright future as ecofriendly alternative bioplastics in sustainable materials.
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