Cellulose Nanocrystals as Nucleating Agents in Lignin-Based Rigid Polyurethane Foams
Kelvin Techera Barbosa, Raphael Duarte Gimnecki, Sandro Campos Amico, Rafael de Avila DelucisAbstract
This study investigates the incorporation of cellulose nanocrystals (CNC) into rigid polyurethane foams (RPUF) derived from lignin polyol. CNC promoted cellular refinement consistent with a heterogeneous nucleation mechanism, reducing average cell size by up to 18% and improving cellular uniformity, particularly at 0.2% and 0.4% concentrations. Fourier-transform infrared spectroscopy (FTIR) confirmed hydrogen bonding between CNC hydroxyl groups and the polyurethane matrix. Thermogravimetric analysis revealed a shift in the temperature at 10% mass loss from 272 °C (control) to 282–285 °C (0.2–0.4% wt % CNC), while DSC showed an increase in glass transition temperature (Tg) obtained by DSC from 31.5 °C for the neat RPUF to 58.2 °C for RPUF_0.2%. SEM micrographs confirmed more homogeneous cell distribution at low CNC loadings, whereas higher concentrations (0.6–0.8%) led to agglomeration and irregular cells. Apparent density increased by ∼7% at 0.4 wt % CNC, correlating with enhanced compressive strength (+12%) and storage modulus (+15%). The improvement in compressive performance was present after normalization by apparent density, indicating that the mechanical response was not exclusively density driven. Overall, CNC addition improved the structure and thermo-mechanical performance of lignin-based RPUF, being a sustainable route to high-performance foams for energy-efficient applications.