Wisconsin Energy Institute and the DOE Great Lakes Bioenergy Research Center, University of Wisconsin-Madison, 1552 University Avenue, Madison, WI 53726, USA.
Department of Biosystems Engineering, University of Wisconsin-Madison.
ChemSusChem. 2024 Apr 22;17(8):e202400234. doi: 10.1002/cssc.202400234.
As we work to transition the modern society that is based on non-renewable chemical feedstocks to a post-modern society built around renewable sources of energy, fuels, and chemicals, there is a need to identify the renewable resources and processes for converting them to platform chemicals. Herein, we explore a strategy for utilizing the p-hydroxybenzoate in biomass feedstocks (e. g., poplar and palm trees) and converting it into a portfolio of commodity chemicals. The targeted bio-derived product in the first processing stage is p-hydroxybenzamide produced from p-hydroxybenzoate esters found in the plant. In the second stage a continuous reaction process converts the p-hydroxybenzamide to p-aminophenol via the Hofmann rearrangement and recovers the unreacted p-hydroxybenzamide. In the third stage the p-aminophenol can be acetylated to form paracetamol, which is readily isolated by liquid/liquid extraction at >95 % purity and an overall p-hydroxybenzamide-to-paracetamol process yield of ~90 %. We explore how utilization of protecting groups alters the challenges in this process and expands the portfolio of possible products to include p-(methoxymethoxy)aniline and N-acetyl-p-(methoxymethoxy)aniline. These target compounds could become value-added renewably-sourced platform chemicals that could be used to produce biodegradable plastics, pigments, and pharmaceuticals.
在我们努力将基于不可再生化学原料的现代社会转变为围绕可再生能源、燃料和化学品的后现代社会时,我们需要确定可再生资源和将它们转化为平台化学品的工艺。在此,我们探索了一种利用生物质原料(如杨树和棕榈树)中的对羟基苯甲酸来生产一系列大宗商品化学品的策略。在第一阶段的加工中,目标生物衍生产品是从植物中提取的对羟基苯甲酸酯得到的对羟基苯甲酰胺。在第二阶段,通过霍夫曼重排反应将对羟基苯甲酰胺连续转化为对氨基酚,并回收未反应的对羟基苯甲酰胺。在第三阶段,对氨基酚可以乙酰化形成扑热息痛,通过液/液萃取可以很容易地将其分离,纯度超过 95%,对羟基苯甲酰胺到扑热息痛的总收率约为 90%。我们探讨了保护基团的使用如何改变了这个过程中的挑战,并扩展了可能的产品组合,包括对甲氧基甲氧基苯胺和 N-乙酰基对甲氧基甲氧基苯胺。这些目标化合物可以成为有附加值的可再生来源的平台化学品,可用于生产可生物降解的塑料、颜料和药品。