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April 23, 2026ACS Sustainable Chemistry & Engineering2 citations

Carboxylated Lignin-Containing Cellulose Microfibrils Produced from Wood at High Solids through Maleic Acid Hydrotropic Fractionation

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XZXi ZhangPKPeter KitinJGJing Geng

Key Points

  • The aim is to produce lignin-containing cellulose microfibrils from wood at high solids while overcoming fibril interactions.
  • Lignin-containing cellulose microfibrils were produced from thermomechanical pulp using maleic acid hydrotropic fractionation.
  • Fractionated water-insoluble solids were ball-milled at varying solid contents from 2% to 28%.
  • Fibrillation extents were evaluated by microscopy, water retention value tests, and sedimentation tests.
  • Increased severity of maleic acid hydrotropic fractionation improved fibrillation due to better delignification and hemicellulose dissolution.
  • Maleic acid also introduced carboxylation, enhancing electrostatic repulsion among fibrils and improving fibrillation.
  • Lignin in the final product lowered the solids-loading threshold for effective fibrillation to 5%, significantly lower than previous findings.

Abstract

Producing lignin-containing cellulose microfibrils (L-CMF) at high solids remains challenging due to strong fibril–fibril interactions and the lignin “glue” effect in plant cell walls. This study demonstrated the high-solid production of lignin-containing cellulose microfibrils (L-CMF) from thermomechanical pulp (TMP) of birchwood through maleic acid (MA) hydrotropic fractionation (MAHF). The fractionated water-insoluble solids (WIS) were ball-milled at solid contents from 2% to 28% to produce L-CMFs. The extents of fibrillation of the resultant L-CMFs were evaluated by microscopy, water retention value (WRV), and suspension sedimentation tests. The results indicate that increasing MAHF severity improved fibrillation due to improved delignification and hemicellulose dissolution. MA also esterified cellulose and lignin in WIS, introducing surface carboxylation and an electrostatic repulsion force among fibrils to enhance the lignin lubrication effects and thereby improve fibrillation. The esterification also facilitated the breaking-up of the residual lignin (as glue) in the WIS to form individually separated lignin particles. Lignin in the WIS/L-CMF lowers the solids-loading threshold to 5% for the interfiber/fibril frictional and tensional interactions─the secondary fibrillation mechanism through external peeling off fibril separation─to effectively promote fibrillation, which is significantly lower than the 17–28% observed in ball-milling bleached wood fibers.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69e9b80e85696592c86eb852https://doi.org/10.1021/acssuschemeng.6c01405
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