Protecting group-free photocatalyzed O-arylation of quinic acid

Miguel A. Bárbara , Nuno R. Candeias , Luis F. Veiros , Filipe Menezes , Andrea Gualandi , Pier G. Cozzi , Carlos A.M. Afonso
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Abstract

This study presents a novel and environmentally friendly approach to the preparation of quinic acid-derived esters from photocatalyzed O-arylation with haloarenes. This study expands the quinic acid-derived chemical space from renewable biomass by harnessing the power of visible-light-driven photocatalysis under mild conditions without the need for protecting groups. A thorough screening of reaction conditions, including the choice of photocatalyst, solvent, base, nickel source, and ligand, led to the identification of the most effective conditions, these being 5CzBN as the optimal photocatalyst, and glyme-based nickel complexes as the preferred nickel source. These conditions enabled the formation of O-arylated products with good yields without noticeable formation of decarboxylated products. Computational calculations support the proposed mechanism for the O-arylation process, based on oxidative addition, anion exchange, and reductive elimination upon energy transfer from the photocatalyst to the Ni(II) species. Computational considerations for a nickel-catalyzed photodecarboxylative arylation mechanism suggest that the oxidation of quinate by the excited photocatalyst or other species derived thereof is considerably less favorable than a pathway only involving energy transfer to a nickel species. The research provides valuable insights into the mechanism of this environmentally conscious transformation.

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保护无基光催化奎宁酸o -芳基化
本研究提出了一种新颖且环保的方法,通过光催化与卤代芳烃的o -芳基化反应制备奎宁酸衍生酯。这项研究通过在温和条件下利用可见光驱动的光催化作用,扩大了可再生生物质中奎宁酸衍生的化学空间,而不需要保护基团。对反应条件进行了全面筛选,包括光催化剂、溶剂、碱、镍源和配体的选择,最终确定了最有效的反应条件,其中5CzBN为最佳光催化剂,glyme基镍配合物为首选镍源。这些条件使得o -芳基化产物的生成率很高,没有明显的脱羧产物的生成。基于氧化加成、阴离子交换和光催化剂向Ni(II)物质传递能量时的还原性消除,计算计算支持了o -芳基化过程的机制。对镍催化的光脱羧芳基化机制的计算考虑表明,受激发的光催化剂或其衍生的其他物质对喹酸盐的氧化比仅涉及能量转移到镍物质的途径要不利得多。这项研究为这种具有环保意识的转变的机制提供了有价值的见解。
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