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Fabrication and Design of Wood-Based High-Performance Composites
Published on: November 9, 2019
High-performance all-cellulose composites bulks enabled by a surface dissolution-intense shear plasticization
Menghuan Zu1, Ziwen Jia1, Qing Chen2
1School of Mechanical and Electrical Engineering, Soochow University, Suzhou, 215000, China.
Carbohydrate Polymers
|July 23, 2026
Summary
This study introduces a novel plasticization method using ionic liquids and shear force to create high-performance, biodegradable all-cellulose composites (ACC). These sustainable materials offer a promising alternative to petroleum-based plastics.
Area of Science:
- Materials Science
- Polymer Science
- Sustainable Materials
Background:
- All-cellulose composites (ACC) offer high mechanical properties and biodegradability, making them potential replacements for petroleum-based plastics.
- Fabricating robust ACC structural components is challenging due to strong cellulose molecular interactions.
Purpose of the Study:
- To develop a novel plasticization strategy for fabricating high-performance ACC films and bulks.
- To overcome processing challenges associated with strong cellulose intermolecular forces.
Main Methods:
- A plasticization strategy involving surface dissolution and intense shear using ionic liquids and a twin-roller mixer.
- Characterization of cellulose morphology and crystal structure during processing.
- Establishment of processing windows for ACC bulks via a layer-by-layer method.
Main Results:
- Uniform surface dissolution achieved at up to 60 wt% cellulose content.
- ACC films exhibit tensile strength up to 98.20 ± 6.60 MPa.
- ACC bulk laminates show flexural strength >100 MPa and modulus >9 GPa, with complete biodegradability.
Conclusions:
- The proposed method efficiently produces high-performance, biodegradable ACC structural components.
- This strategy enables the use of sustainable cellulose resources for advanced material applications.
Keywords:
All-cellulose compositesIonic liquidsPlasticizationStructural materialsSurface dissolution-intense shear
