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Updated: Jan 8, 2026

Ultrafast Lignin Extraction from Unusual Mediterranean Lignocellulosic Residues
Published on: March 9, 2021
Lignin as a multifunctional chain extender for high-performance waterborne polyurethane: A comparative investigation
Xinyue Wang1, Tengteng Zhang1, Jinfang Chu2
1College of New Materials and Chemical Engineering, Beijing Institute of Petrochemical Technology, Beijing, 102617, PR China; Beijing Key Laboratory of Special Elastomers and Composites, Beijing Institute of Petrochemical Technology, Beijing, 102617, PR China.
Abstract:
As the most abundant natural aromatic polymer, lignin demonstrates unparalleled potential in advancing sustainable waterborne polyurethane (WPU) systems. This work redefined the role of enzymatic lignin (EL) by strategically integrating it as a chain extender (C-LWPU) and a reinforcing filler (F-LWPU), transcending its conventional use as a filler. When employed as a chain extender, EL enabled a remarkable incorporation of 20 wt%, yielding LWPU films with a tensile strength of 31.73 MPa, a 772 % enhancement over pristine WPU, along with exceptional bioactivity (free radical scavenging ratios of 99.4 % for ABTS+ and 91.3 % for DPPH), superior UV shielding, and thermal stability. In contrast, the F-LWPU films achieved a marginally higher tensile strength (34.37 MPa) but required only 1 wt% EL loading, while with reduced bioactivity (free radical scavenging ratios of 92.1 % for ABTS+ and 20.9 % for DPPH). Crucially, the C-LWPU system outperformed in balancing high EL utilization, cost-effectiveness, and multifunctionality, underscoring EL's capacity to act as a multifunctional structural unit rather than a mere filler. By resolving the longstanding trade-off between high biomass content and performance, this work establishes EL as a pivotal enabler of next-generation WPU materials, offering a scalable pathway toward biomass-based polymers with tailored properties for industrial applications.
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