4.8 Article

A Biodegradable, Waterproof, and Thermally Processable Cellulosic Bioplastic Enabled by Dynamic Covalent Modification

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ADVANCED MATERIALS
卷 35, 期 25, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202301398

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biodegradability; cellulosic bioplastic; dynamic covalent networks; thermo-processable materials

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The research proposes a strategy to make cellulose thermoplastic by partially dissociating hydrogen bonds and reassembling cellulose chains through constructing a dynamic covalent network. The developed cellulosic bioplastic exhibits a moderate glass transition temperature of 240 degrees C, high tensile strength of 67 MPa, excellent moisture and solvent resistance, good recyclability, and biodegradability in nature.
The growing environmental concern over petrochemical-based plastics continuously promotes the exploration of green and sustainable substitute materials. Compared with petrochemical products, cellulose has overwhelming superiority in terms of availability, cost, and biodegradability; however, cellulose's dense hydrogen-bonding network and highly ordered crystalline structure make it hard to be thermoformed. A strategy to realize the partial disassociation of hydrogen bonds in cellulose and the reassembly of cellulose chains via constructing a dynamic covalent network, thereby endowing cellulose with thermal processability as indicated by the observation of a moderate glass transition temperature (T-g = 240 degrees C), is proposed. Moreover, the cellulosic bioplastic delivers a high tensile strength of 67 MPa, as well as excellent moisture and solvent resistance, good recyclability, and biodegradability in nature. With these advantageous features, the developed cellulosic bioplastic represents a promising alternative to traditional plastics.

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