Giri Rahul, Zhilin Egor, Kissling Mathias, Patra Subrata, Fernandes Anthony J, Katayev Dmitry
Department of Chemistry, Biochemistry and Pharmaceutical Sciences, University of Bern, Freiestrasse 3, 3012 Bern, Switzerland.
J Am Chem Soc. 2024 Nov 20;146(46):31547-31559. doi: 10.1021/jacs.4c09039. Epub 2024 Nov 5.
The growing demand for chemical production continues to drive the development of sustainable and efficient methods for introducing molecular complexity. In this context, the exploration of unconventional functional group transfer reagents (FGTRs) has led to significant advancements in practical and atom-efficient synthetic protocols. Aiming to advance the field of valuable organic synthesis, herein we report the successful development of carbon-based, bench-stable, modular, and inexpensive reagents implemented in dual halogen transfer to unsaturated hydrocarbons via photocatalytic activation of reagents based on a radical-polar crossover mechanism. This method beneficially enables vicinal dichlorination, dibromination, and bromo-chlorination reactions of olefins, offering practical alternatives to the use of toxic binary halogens. Detailed mechanistic studies, combining experimental, spectroscopic, and theoretical investigations, revealed a distinctive photocatalytic single-electron transfer reduction of FGTR. This process triggers mesolytic carbon-halogen bond cleavage, followed by a radical 1,2-halide rearrangement, leading to the continuous generation of dihalogen species in the reaction medium. The wide applicability of the developed protocol is demonstrated through an extensive scope of unsaturated molecules, including additional operations on strain-release dihalogenation.
对化学品生产不断增长的需求持续推动着引入分子复杂性的可持续且高效方法的发展。在此背景下,对非常规官能团转移试剂(FGTRs)的探索已在实用且原子经济的合成方案方面取得了重大进展。为推动有价值的有机合成领域发展,本文我们报道了成功开发出基于自由基 - 极性交叉机制通过光催化活化试剂实现向不饱和烃进行双卤转移的碳基、易于储存、模块化且廉价的试剂。该方法有益地实现了烯烃的邻二氯化、二溴化以及溴氯化反应,为使用有毒二元卤素提供了实用的替代方法。结合实验、光谱和理论研究的详细机理研究揭示了FGTR独特的光催化单电子转移还原过程。该过程引发了均裂碳 - 卤键裂解,随后是自由基1,2 - 卤化物重排,导致反应介质中双卤素物种的持续生成。通过广泛的不饱和分子范围,包括对应变释放二卤化的额外操作,证明了所开发方案的广泛适用性。