Reductive Partial Depolymerization of Acetone Organosolv Lignin to Tailor Lignin Molar Mass, Dispersity, and Reactivity for Polymer Applications

Publication date

2023-04-17

Authors

Smit, Arjan T.ISNI 0000000527521655
Dezaire, ThomasISNI 0000000518085257
Riddell, Luke A.ISNI 0000000526322320
Bruijnincx, Pieter C.A.ISNI 0000000389623396

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Document Type

Article
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Abstract

Lignin partial depolymerization by reduction (PDR) was developed as a strategy to tailor a technical lignin’s molar mass and reduce its heterogeneity and to potentially increase the reactivity of lignin hydroxyl groups in polymer applications such as PU foams and coatings. The process aims to cleave remaining lignin β-O-4 linkages, thereby reducing the molar mass of large lignin fragments and overall lignin dispersity. Acetone organosolv lignin from pilot-scale fractionation of industrial-size wood chips was depolymerized using methanol, a Ru/C catalyst, and externally supplied hydrogen. The effect of reaction temperatures (in the presence and absence of the catalyst) was fully detailed using SEC, 31P NMR, and 2D-HSQC NMR analyses of the depolymerized lignin. The Ru/C catalyst promoted molar mass reduction by hydrogenolysis and slightly increased the lignin aliphatic OH content. Process parameter screening showed effective depolymerization at high lignin concentrations but required relatively high catalyst loadings. PDR depolymerization efficiency proved to be dependent on the technical lignin’s quality. A less-condensed lignin with a higher β-O-4 content showed improved ether cleavage, yielding a lower lignin molar mass after PDR and increased formation of 4-n-propanol end groups. Overall, the PDR process provides control over key lignin characteristics, which in turn offers potential to tailor biobased polymer properties for various applications.

Keywords

biomass organosolv pretreatment, lignocellulose biorefinery, reductive depolymerization, tailored lignin molar mass and reactivity, General Chemistry, Environmental Chemistry, General Chemical Engineering, Renewable Energy, Sustainability and the Environment, SDG 7 - Affordable and Clean Energy

Citation

Smit, A T, Dezaire, T, Riddell, L A & Bruijnincx, P C A 2023, 'Reductive Partial Depolymerization of Acetone Organosolv Lignin to Tailor Lignin Molar Mass, Dispersity, and Reactivity for Polymer Applications', ACS Sustainable Chemistry and Engineering, vol. 11, no. 15, pp. 6070-6080. https://doi.org/10.1021/acssuschemeng.3c00617