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August 12, 2025

Ultratough, Processable Bioplastics Enabled by Triple Interlocking of Lignin and Cellulose.

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Authors

JSJinsong SunHHHaozhou HuangWWWen Wang

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Overview

Triple interlocking strategy enhances mechanical properties in bioplastics from lignocellulose, indicating improved performance and sustainability.

Key Points

  • CEL Bioplastic combines lignin and cellulose for enhanced toughness and processability, achieving remarkable mechanical properties.
  • The bioplastic exhibits a tensile strength of ∼200 MPa and a toughness of ∼110 MJ/m3, far exceeding similar materials.
  • Long-chain fatty acids are esterified with cellulose and lignin, creating a robust triple-interlocking architecture.
  • Offers a sustainable alternative to petroleum-based plastics with features like biodegradability, recyclability, and scalability.

Cite This Study

Sun et al. (2025) studied this question.

synapsesocial.com/papers/689e03e0d61984b91e13cf87https://doi.org/10.1021/acsnano.5c06221
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Toward Overcoming the Strength‐Toughness Trade‐off in Cellulose Bulk Material by Tuning the Double‐Network Structure With Hierarchical Hydrogen Bonding2026
  2. 2Massively Preparable, Super-tough and Ultra-strong Cellulose-based Bioplastics Enabled by Microphase Separation2025
  3. 3Electrostatic Adsorption-Reinforced Carboxymethylated Cellulose Nanofiber-Lignin Sustainable Bioplastic for UV-Blocking and Water-Stable Packaging Materials2025
  4. 4Mechanochemical–Mediated Lignocellulose Reassembly for High‐Strength, Sustainable Bioplastics2026
  5. 5Strong, Biodegradable Lignocellulosic Films as Potential Bioplastics2026 · 1 citations