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Biosourced polymetallic catalysis: A surprising and efficient means to promote the Knoevenagel condensation

机译:生物来源的多金属催化:促进Knoevenagel缩合的令人惊讶且有效的方法

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Zn hyperaccumulator (Arabidobsis halleri) and Zn accumulator Salix ‘Tordis’ (Salix schwerinii x S. viminalis) have shown their interest in the phytoextraction of polluted brownfields. Herein, we explore an innovative methodology based on the chemical valorization of Zn-rich biomass produced by these metallophyte plants. The approach is based on the direct use of polymetallic salts derived from plants as “Lewis acid” catalysts in organic chemistry. The formed ecocatalysts were characterized via ICP-MS, XRD, FT-IR in order to elucidate the chemical composition, structure and behavior of the formed materials. The Doebner-Knoevenagel reaction was chosen as model reaction to study their synthetic potential. Significant differences to conventional catalysts such as zinc (II) chloride are observed. They can principally be related to a mixture of unusual mineral species. DFT calculations were carried out on these salts in the context of the Gutmann theory. They allow the rationalization of experimental results. Finally, these new bio-based polymetallic catalysts illustrated the interest of this concept for green and sustainable catalysis.
机译:锌超富集者(Arabidobsis halleri)和锌富集者Salix'Tordis'(Salix schwerinii x S. viminalis)表现出对污染的褐地植物提取的兴趣。在这里,我们探索一种基于这些金属植物植物产生的富锌生物质的化学增值的创新方法。该方法基于在植物化学中直接使用源自植物的多金属盐作为“路易斯酸”催化剂。通过ICP-MS,XRD,FT-IR对所形成的生态催化剂进行了表征,以阐明所形成材料的化学组成,结构和行为。选择Doebner-Knoevenagel反应作为模型反应来研究其合成潜力。观察到与常规催化剂,例如氯化锌(II)的显着差异。它们可能主要与稀有矿物质的混合物有关。在古特曼理论的背景下对这些盐进行了DFT计算。它们可以使实验结果合理化。最后,这些新型的生物基多金属催化剂说明了这一概念对绿色和可持续催化的兴趣。

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