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Synthesis of biomass-based amines: Metal-free catalytic reductive amination of xylose and biomass-derived carbonyl compounds using pyridine-based ionic liquid/triethoxysilane

机译:基于生物质的胺的合成:使用基于吡啶的离子液体/三乙氧基硅烷对木糖和生物质衍生的羰基化合物进行无金属催化还原胺化

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摘要

Conversions of biomass into value-added nitrogen-containing compounds such as furfurylamines are industrially demanding, contrarily, highly challenging. In this work, we present the synthesis of N-substituted furfurylamines from xylose/biomass-derived carbonyl compounds utilizing novel [Pro(Etpy)(3)][Lac](3) ionic liquid (IL) coupled with (EtO)(3)SiH as a reductive agent, which offers a metal-free alternative route with mild reaction conditions. Besides, reductive amination of a wide variety of biomass-derived carbonyl compounds proceeded in 25-92% yield, whereas, conversion of xylose to furfural followed by reductive amination gave 59-72% yield of furfurylamines by using [Pro(Etpy)(3)][Lac](3) IL catalyst with (EtO)(3)SiH. The one-pot three-step procedure is highly efficient for the synthesis of furfurylamines from xylose as it avoids isolation of furfural and requires a single catalyst for three different steps. Additionally, this IL demonstrates excellent recyclability and selectivity substantiating industrial feasibility. Overall, we present a simple yet efficient integrated approach to overcome the problems associated with the separation and purification of intermediates (i.e, furfural), which saves energy, solvent, cost, and time. The synthesized IL showed excellent catalytic activity towards the synthesis of industrially essential molecules containing N-substituted furfurylamines.
机译:相反,将生物质转化成增值的含氮化合物,例如糠基胺,在工业上是非常苛刻的要求。在这项工作中,我们介绍了利用新型[Pro(Etpy)(3)] [Lac](3)离子液体(IL)与(EtO)(3)结合从木糖/生物质衍生的羰基化合物合成N-取代的糠胺SiH作为还原剂,可在温和的反应条件下提供无金属替代路线。此外,各种生物质衍生的羰基化合物的还原胺化产率为25-92%,而木糖转化为糠醛,然后进行还原胺化,使用[Pro(Etpy)(3 )] [Lac](3)IL催化剂与(EtO)(3)SiH。一锅式三步法非常有效地从木糖合成糠胺,因为它避免了糠醛的分离,并且对于三个不同的步骤都需要一个催化剂。此外,该离子液体具有出色的可回收性和选择性,可证明其工业可行性。总体而言,我们提出了一种简单而有效的集成方法来克服与中间体(即糠醛)的分离和纯化相关的问题,从而节省了能源,溶剂,成本和时间。合成的IL对合成包含N-取代的糠胺的工业上必需的分子表现出出色的催化活性。

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