4.7 Article

Selected Properties of Bio-Based Layered Hybrid Composites with Biopolymer Blends for Structural Applications

Journal

POLYMERS
Volume 14, Issue 20, Pages -

Publisher

MDPI
DOI: 10.3390/polym14204393

Keywords

composite; mechanical properties; blends; polylactide; polycaprolactone; polyhydroxybutyrate; microcrystalline cellulose; triethyl citrate

Funding

  1. PROM International Scholarship Exchange
  2. European Social Fund under the Operational Programme Knowledge Education Development, a non-competitive project entitled International Scholarship Exchange for Ph.D. Students and Academic Staff [POWR.03.03.00-00PN13/18]
  3. Polish Ministry of Education and Science [SKN/SP/495845/2021]
  4. Polish National Agency for Academic Exchange [PPN/BFR/2020/1/00042/U/00001]
  5. Investissements d'Avenir, a French program by ANR [ANR-16-IDEX-0002]

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This study produced layered composites using different biopolymer adhesive layers. Among the pure biopolymers, PLA showed the best performance, while among the blends, PLA + PHB, PLA + PHB + 25MCC, and PLA + PHB + 25MCC + 3TEC performed the best. The mechanical properties of the composites decreased with increases in the MCC content, but adding 3% TEC improved the properties of the PLA + PHB + MCC blends.
In this study, layered composites were produced with different biopolymer adhesive layers, including biopolymer polylactic acid (PLA), polycaprolactone (PCL), and biopolymer blends of PLA + polyhydroxybutyrate (PHB) (75:25 w/w ratio) with the addition of 25, 50% microcrystalline cellulose (MCC) and 3% triethyl Citrate (TEC) for these blends, which acted as binders and co-created the five layers in the elaborated composites. Modulus of rupture (MOR), modulus of elasticity (MOE), internal bonding strength (IB), density profile, differential scanning calorimetry (DSC), thermogravimetric analysis (TGA), and scanning electron microscopy (SEM) analysis were obtained. The results showed that among the composites in which two pure biopolymers were used, PLA obtained the best results, while among the produced blends, PLA + PHB, PLA + PHB + 25MCC, and PLA + PHB + 25MCC + 3TEC performed best. The mechanical properties of the composites decreased with increases in the MCC content in blends. Therefore, adding 3% TEC improved the properties of composites made of PLA + PHB + MCC blends.

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