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April 8, 2026Polymers0 citationsOpen Access

Liquefaction of Ruscus aculeatus Branches into Bio-Polyols: Process Optimization and Polyol Characterization

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YDYuliya DulyanskaLCLuísa Cruz-LopesFBF. O. C. Bernardo

Key Points

  • The research aims to optimize the liquefaction process of Ruscus aculeatus branches to produce bio-polyols and assess their properties.
  • Systematic study of temperature, reaction time, particle size, and material-to-solvent ratio on liquefaction yield.
  • Experiments conducted to measure yield at various conditions up to 180 °C and 60 min reaction time.
  • Thermal and rheological analyses to evaluate properties of the resulting bio-polyols.
  • Liquefaction yield reached 92% at 180 °C after 60 minutes.
  • Smaller particle sizes and higher solvent ratios improved liquefaction efficiency.
  • Decreased hydroxyl number with increasing temperature, indicating dehydration and condensation.
  • Increased viscosity and improved thermal stability at higher liquefaction temperatures.

Abstract

The conversion of lignocellulosic biomass into bio-polyols through liquefaction has attracted increasing interest as a sustainable route for polymer feedstock production. The liquefaction of Ruscus aculeatus L. branches was investigated to identify optimal processing conditions and to evaluate the properties of the resulting bio-polyols. The effects of temperature, reaction time, particle size, and material-to-solvent ratio on liquefaction yield were systematically studied. Liquefaction yield increased markedly with temperature, reaching up to 92% at 180 °C after 60 min of reaction, while reaction time showed only a marginal effect beyond 15 min. Smaller particle sizes and higher solvent ratios improved liquefaction efficiency, with optimal conditions identified between 1:7 and 1:10 material-to-solvent ratios. The hydroxyl number decreases with increasing liquefaction temperature due to dehydration and condensation reactions. Thermal and rheological analyses indicated improved thermal stability and increased viscosity at higher liquefaction temperatures. These results highlight the potential of Ruscus aculeatus branches as a promising renewable feedstock for bio-polyol production and polyurethane applications.

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Cite This Study

Dulyanska et al. (2026) studied this question.

synapsesocial.com/papers/69d5f09e74eaea4b11a79fa7https://doi.org/10.3390/polym18070880
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