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基于膜的TBADT回收作为提高连续流光催化氢原子转移转化可持续性的策略。

Membrane-based TBADT recovery as a strategy to increase the sustainability of continuous-flow photocatalytic HAT transformations.

作者信息

Wen Zhenghui, Pintossi Diego, Nuño Manuel, Noël Timothy

机构信息

Flow Chemistry Group, Van 't Hoff Institute for Molecular Sciences, Faculty of Science, University of Amsterdam, Science Park 904, 1098 XH, Amsterdam, The Netherlands.

Vapourtec Ltd., Park Farm Business Centre, Fornham St Genevieve, Bury St Edmunds, Suffolk, IP28 6TS, UK.

出版信息

Nat Commun. 2022 Oct 18;13(1):6147. doi: 10.1038/s41467-022-33821-9.

Abstract

Photocatalytic hydrogen atom transfer (HAT) processes have been the object of numerous studies showcasing the potential of the homogeneous photocatalyst tetrabutylammonium decatungstate (TBADT) for the functionalization of C(sp)-H bonds. However, to translate these studies into large-scale industrial processes, careful considerations of catalyst loading, cost, and removal are required. This work presents organic solvent nanofiltration (OSN) as an answer to reduce TBADT consumption, increase its turnover number and lower its concentration in the product solution, thus enabling large-scale photocatalytic HAT-based transformations. The operating parameters for a suitable membrane for TBADT recovery in acetonitrile were optimized. Continuous photocatalytic C(sp)-H alkylation and amination reactions were carried out with in-line TBADT recovery via two OSN steps. Promisingly, the observed product yields for the reactions with in-line catalyst recycling are comparable to those of reactions performed with pristine TBADT, therefore highlighting that not only catalyst recovery (>99%, TON > 8400) is a possibility, but also that it does not happen at the expense of reaction performance.

摘要

光催化氢原子转移(HAT)过程一直是众多研究的对象,这些研究展示了均相光催化剂四丁基铵十钨酸盐(TBADT)对C(sp)-H键进行官能化的潜力。然而,要将这些研究转化为大规模工业过程,需要仔细考虑催化剂负载量、成本和去除问题。这项工作提出了有机溶剂纳滤(OSN)作为减少TBADT消耗、增加其周转数并降低其在产物溶液中浓度的解决方案,从而实现基于光催化HAT的大规模转化。优化了用于在乙腈中回收TBADT的合适膜的操作参数。通过两个OSN步骤在线回收TBADT,进行了连续的光催化C(sp)-H烷基化和胺化反应。令人鼓舞的是,观察到的在线催化剂循环反应的产物收率与使用原始TBADT进行的反应相当,因此突出表明不仅催化剂回收(>99%,TON>8400)是可能的,而且不会以牺牲反应性能为代价。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7a56/9579200/c240315c9886/41467_2022_33821_Fig1_HTML.jpg

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