Wu Xianyuan, De Bruyn Mario, Barta Katalin
University of Groningen, Stratingh Institute for Chemistry, Nijenborgh 4, Groningen, The Netherlands.
University of Graz, Department of Chemistry, Organic and Bioorganic Chemistry, Heinrichstrasse 28/II, 8010 Graz, Austria.
Chem Commun (Camb). 2023 Aug 15;59(66):9929-9951. doi: 10.1039/d3cc01555f.
Lignin holds tremendous and versatile possibilities to produce value-added chemicals and high performing polymeric materials. Over the years, different cutting-edge lignin depolymerization methodologies have been developed, mainly focusing on achieving excellent yields of mono-phenolic products, some even approaching the theoretical maximum. However, due to lignin's inherent heterogeneity and recalcitrance, its depolymerization leads to relatively complex product streams, also containing dimers, and higher molecular weight fragments in substantial quantities. The subsequent chemo-catalytic valorization of these higher molecular weight streams, containing difficult-to-break, mainly C-C covalent bonds, is tremendously challenging, and has consequently received much less attention. In this minireview, we present an overview of recent advances on the development of sustainable biorefinery strategies aimed at the production of well-defined chemicals and polymeric materials, the prime focus being on depolymerized lignin oils, containing high molecular weight fractions. The key central unit operation to achieve this is (bio)catalytic funneling, which holds great potential to overcome separation and purification challenges.
木质素在生产高附加值化学品和高性能聚合物材料方面具有巨大且多样的潜力。多年来,已开发出不同的前沿木质素解聚方法,主要致力于实现单酚类产品的优异产率,有些甚至接近理论最大值。然而,由于木质素固有的异质性和难降解性,其解聚会产生相对复杂的产物流,其中还含有大量的二聚体和更高分子量的片段。这些含有难以断裂的主要是碳 - 碳共价键的更高分子量物流的后续化学催化增值极具挑战性,因此受到的关注要少得多。在本综述中,我们概述了旨在生产明确化学品和聚合物材料的可持续生物炼制策略的最新进展,主要重点是含有高分子量馏分的解聚木质素油。实现这一目标的关键核心单元操作是(生物)催化汇集,它在克服分离和纯化挑战方面具有巨大潜力。