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April 8, 2026Polymers0 citationsOpen Access

Rosin-Modified Microcrystalline Cellulose for Enhancing Polylactic Acid-Based Composites with Good Interfacial Compatibility and Mechanical Performance

FZFuquan ZhaoXXXiaoyu XieYMYu Meng

Key Points

  • This research aims to improve the interfacial compatibility and mechanical performance of polylactic acid/cellulose composites through modification techniques.
  • Developed rosin emulsion-modified microcrystalline cellulose (MCC-R) for blending with PLA.
  • Fabricated PLA/MCC-R composites using a one-step twin-screw extrusion process.
  • Varying MCC-R contents were tested to analyze mechanical properties.
  • 8 wt% MCC-R enhanced flexural strength to 125.5 MPa and tensile strength to 30.8 MPa.
  • Young's modulus improved to 1.19 GPa, and elongation at break reached 3.07%.
  • Enhanced filler dispersion and interfacial stress transfer contributed to these improvements.

Abstract

The interfacial incompatibility and insufficient mechanical performance of polylactic acid (PLA)/cellulose composites have severely restricted their practical applications. To address the critical issue of interfacial incompatibility in PLA/cellulose composites, this work developed a novel strategy employing rosin emulsion for blending modification of microcrystalline cellulose (MCC), followed by a one-step extrusion process to fabricate PLA composites. The corresponding analyses confirmed that the rosin has been successfully added to MCC surfaces, forming the hydrophobic interface while maintaining the cellulose I crystalline structure. Subsequently, rosin emulsion-modified MCC (MCC-R) reinforced PLA (PLA/MCC-R) composites were fabricated via twin-screw extrusion at varying MCC-R contents. The testing results illustrated that the introduction of 8 wt% MCC-R can enhance the mechanical properties of PLA/MCC-R composites with the flexural strength (125.5 MPa), tensile strength (30.8 MPa), Young’s modulus (1.19 GPa), and elongation at break (3.07%), which was attributed to enhanced filler dispersion and interfacial stress transfer. Overall, this work established a facile and sustainable strategy for developing multifunctional PLA composites with engineered interfaces and mechanical robustness, which is vital for practical application. The as-prepared PLA composites show promising application prospects in environmentally friendly packaging, biodegradable disposable products, and lightweight structural components.

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Cite This Study

Zhao et al. (2026) studied this question.

synapsesocial.com/papers/69d5f00974eaea4b11a79848https://doi.org/10.3390/polym18070889
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