Communications Chemistry· 2026Q1
Direct upcycling of unrecyclable household waste into biodegradable high‑performance biocomposites
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- Q1SCImago
- 2026year
Short summary
Researchers developed a method to directly convert unrecyclable lignocellulosic pulp from household waste into biodegradable biocomposites with a tensile modulus of ~6 GPa, a 140% increase over pure PLLA (2.5 GPa).
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Key points
- Developed a direct upcycling method for unrecyclable lignocellulosic pulp from household waste.
- Biocomposites achieved a tensile modulus of ~6 GPa and strength of ~60 MPa.
- Pure PLLA showed a tensile modulus of 2.5 GPa and strength of 42 MPa at comparable crystallinity.
- Biocomposites demonstrated complete disintegration within 30 days under industrial composting.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract In the UK, post-consumer waste is sent to materials recovery facilities (MRFs) to separate the metals, plastics, paper and cardboard for subsequent recycling. However, a significant portion of materials sent to MRFs are rejected. Here, we demonstrate a pathway that directly transforms the recovered lignocellulosic pulp (herein termed recovered solids, RS) from MRF rejects and its enzymatic post-hydrolysis solids (PHS) into biodegradable poly(L‑lactide) (PLLA) composites. We found that both RS and PHS act as effective nucleating and reinforcing agents, increasing the crystallinity of PLLA and its tensile modulus to ~6 GPa while maintaining comparable strength ( ~ 60 MPa). By comparison, unreinforced PLLA at a comparable crystallinity possessed only a tensile modulus and strength of 2.5 GPa and 42 MPa, respectively. The resulting biocomposites also show accelerated biodegradation under simulated industrial composting compared to PLLA, achieving complete disintegration within 30 days. This work provides the first demonstration of directly upcycling unrecyclable MRF reject streams into structural, fully compostable materials, revealing a viable, low‑carbon route to integrate post‑consumer and secondary wastes into a closed‑loop circular economy.
The authors' abstract, as published at the source. Communications Chemistry, 2026 · DOI ↗
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Field: Biomaterials
BiomaterialsMaterials Science