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April 11, 2026ACS Sustainable Chemistry & Engineering1 citations

Partitioning Mechanism of Lignin in Biphasic Solvent Systems: Combined Experiments with Theoretical Calculations

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YLYingren LyuYWYe WuQLQixuan Lin

Key Points

  • This research aims to understand how lignin partitions in biphasic solvent systems, focusing on pH effects and molecular interactions.
  • Investigated lignin partitioning in n-pentanol/H2O and MIBK/H2O systems across varying pH levels.
  • Conducted molecular dynamics simulations to analyze interaction energies between lignin units and solvents.
  • Measured partitioning behavior based on the composition of lignin fragments in different phases.
  • Lower pH levels increased lignin transfer into the organic phase, while higher pH levels led to accumulation in the aqueous phase.
  • In n-pentanol/H2O, lignin enriched in syringyl units preferentially partitioned into the n-pentanol phase.
  • Molecular dynamics showed stronger total interaction energies for S and G lignin units in n-pentanol compared to MIBK.

Abstract

Biphasic solvent pretreatment selectively partitions lignocellulosic compositions between immiscible phases, facilitating fractionation and valorization. However, the molecular determinants of lignin partitioning remain unclear. Herein, lignin partitioning in n-pentanol/H2O and methyl isobutyl ketone (MIBK)/H2O biphasic systems was investigated across pH 1–13 using combined experiments and molecular dynamics (MD) simulations. Higher proton activity (lower pH) promoted lignin transfer into the organic phase, whereas alkaline conditions deprotonated lignin and drove its accumulation in the aqueous phase. In the n-pentanol/H2O system, lignin fragments enriched in syringyl (S) units preferentially partitioned into the n-pentanol phase, followed by guaiacyl (G) and p-hydroxyphenyl (H) units. MD simulations showed that the total interaction energies between lignin units and the n-pentanol/H2O system were stronger than those in the MIBK/H2O system, especially for S and G units, while the difference for H units was marginal. van der Waals forces dominated the lignin-n-pentanol interactions, with strengths in the order S > G > H. n-Pentanol also exhibited stronger affinity for ferulate (FA) than for p-coumarate (PCA). This study elucidated lignin partitioning mechanisms in biphasic solvents, providing a theoretical basis for optimizing biphasic pretreatment and tuning lignin structure.

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Cite This Study

Lyu et al. (2026) studied this question.

synapsesocial.com/papers/69d9e47378050d08c1b751achttps://doi.org/10.1021/acssuschemeng.6c00924
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