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铀酰离子对C(sp) -H氟化的可见光光催化:机理见解

Visible-Light Photocatalysis of C(sp )-H Fluorination by the Uranyl Ion: Mechanistic Insights.

作者信息

Wu Liangliang, Cao Xiaoyan, Chen Xuebo, Fang Weihai, Dolg Michael

机构信息

Key Laboratory of Theoretical and Computational Photochemistry of Ministry of Education, Department of Chemistry, Beijing Normal University, Xin-wai-da-jie No. 19, Beijing, 100875, China.

Theoretical Chemistry, University of Cologne, Greinstrasse 4, 50939, Cologne, Germany.

出版信息

Angew Chem Int Ed Engl. 2018 Sep 3;57(36):11812-11816. doi: 10.1002/anie.201806554. Epub 2018 Aug 6.

Abstract

The uranyl dication shows photocatalytic activity towards C(sp )-H bonds of aliphatic compounds, but not towards those of alkylbenzenes or cyclic ketones. Theoretical insights into the corresponding mechanisms are still limited. Multi-configurational ab initio calculations including relativistic effects reveal the inherent electron-transfer mechanism for the uranyl catalyzed C-H fluorination under blue light. Along the reaction path of the triplet state it was found that the hydrogen atom abstraction triggered by the electron-rich oxygen of the uranyl moiety is the rate-limiting step. The subsequent steps, that is, N-F and O-H bond breakage in a manner of concerted asynchronicity, generation of the targeted fluorinated product, and recovery of the photocatalyst are nearly barrierless. Moreover the single electron transfer between the reactive substrates plays a fundamental role during the whole photocatalytic cycle.

摘要

双氧铀离子对脂肪族化合物的C(sp )-H键具有光催化活性,但对烷基苯或环酮的C(sp )-H键则无此活性。对相应机理的理论认识仍然有限。包含相对论效应的多组态从头算计算揭示了蓝光下双氧铀催化C-H氟化反应的固有电子转移机制。沿着三重态的反应路径发现,双氧铀部分富电子氧引发的氢原子提取是限速步骤。随后的步骤,即N-F和O-H键以协同异步方式断裂、生成目标氟化产物以及光催化剂的恢复,几乎没有能垒。此外,反应底物之间的单电子转移在整个光催化循环中起着重要作用。

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