Bio-based and degradable materials were proposed to challenge the major problem of plastic disposal in the environment. In this context, polyurethane production was re-evaluated, encouraging the search for replacing both petroleum components and highly toxic species. A novel synthesis route is explored in this work, aimed to produce degradable lignin-based polyurethanes. Oligomers from steam-exploded lignin were extracted and used with e-caprolactone (e-CL) to generate a fully bio-based pre-polymer (oligo-grafted-poly(e-CL)), exploiting ringopening polymerization. We have demonstrated that tuning the main reaction parameters, such as e-CL:oligomer and catalyst:e-CL mass ratios, and reaction time, it is possible to obtain different pre-polymers enabling the synthesis of bio-based polyurethanes with variable physicochemical properties. In particular, the oligomeric content modulates the thermal and mechanical properties of the polymer (melting point range: 54-62 degrees C; Young modulus range: 3-7 kPa) and enhances the degradability (up to 13 % wt, in acid environment), highlighting the potential of the material for possible applications.
Synthesis of novel bio-based and degradable polyurethanes using lignin oligomers
Terreni, Edoardo;Caserio, Leonardo;Mauri, Emanuele;Storti, Giuseppe;Moscatelli, Davide
2024-01-01
Abstract
Bio-based and degradable materials were proposed to challenge the major problem of plastic disposal in the environment. In this context, polyurethane production was re-evaluated, encouraging the search for replacing both petroleum components and highly toxic species. A novel synthesis route is explored in this work, aimed to produce degradable lignin-based polyurethanes. Oligomers from steam-exploded lignin were extracted and used with e-caprolactone (e-CL) to generate a fully bio-based pre-polymer (oligo-grafted-poly(e-CL)), exploiting ringopening polymerization. We have demonstrated that tuning the main reaction parameters, such as e-CL:oligomer and catalyst:e-CL mass ratios, and reaction time, it is possible to obtain different pre-polymers enabling the synthesis of bio-based polyurethanes with variable physicochemical properties. In particular, the oligomeric content modulates the thermal and mechanical properties of the polymer (melting point range: 54-62 degrees C; Young modulus range: 3-7 kPa) and enhances the degradability (up to 13 % wt, in acid environment), highlighting the potential of the material for possible applications.File | Dimensione | Formato | |
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