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通过直接脱羧磺酰化揭示的吖啶光催化的官能团发散和结构基础。

Functional group divergence and the structural basis of acridine photocatalysis revealed by direct decarboxysulfonylation.

作者信息

Nguyen Vu T, Haug Graham C, Nguyen Viet D, Vuong Ngan T H, Karki Guna B, Arman Hadi D, Larionov Oleg V

机构信息

Department of Chemistry, The University of Texas at San Antonio One UTSA Circle San Antonio TX 78249 USA

出版信息

Chem Sci. 2022 Mar 21;13(14):4170-4179. doi: 10.1039/d2sc00789d. eCollection 2022 Apr 6.

Abstract

The reactivity of the sulfonyl group varies dramatically from nucleophilic sulfinates through chemically robust sulfones to electrophilic sulfonyl halides-a feature that has been used extensively in medicinal chemistry, synthesis, and materials science, especially as bioisosteric replacements and structural analogs of carboxylic acids and other carbonyls. Despite the great synthetic potential of the carboxylic to sulfonyl functional group interconversions, a method that can convert carboxylic acids directly to sulfones, sulfinates and sulfonyl halides has remained out of reach. We report herein the development of a photocatalytic system that for the first time enables direct decarboxylative conversion of carboxylic acids to sulfones and sulfinates, as well as sulfonyl chlorides and fluorides in one step and in a multicomponent fashion. A mechanistic study prompted by the development of the new method revealed the key structural features of the acridine photocatalysts that facilitate the decarboxylative transformations and provided an informative and predictive multivariate linear regression model that quantitatively relates the structural features with the photocatalytic activity.

摘要

磺酰基的反应活性差异极大,从亲核性的亚磺酸盐到化学性质稳定的砜,再到亲电性的磺酰卤——这一特性在药物化学、合成及材料科学中得到了广泛应用,尤其是作为生物电子等排体替代物以及羧酸和其他羰基化合物的结构类似物。尽管羧酸与磺酰基官能团之间的相互转化具有巨大的合成潜力,但一种能够将羧酸直接转化为砜、亚磺酸盐和磺酰卤的方法却一直未能实现。我们在此报告一种光催化体系的开发,该体系首次实现了羧酸一步多组分直接脱羧转化为砜、亚磺酸盐以及磺酰氯和氟化物。由该新方法的开发所引发的机理研究揭示了吖啶光催化剂促进脱羧转化的关键结构特征,并提供了一个信息丰富且具有预测性的多元线性回归模型,该模型定量地将结构特征与光催化活性联系起来。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/58ab/8985579/9f0e90489cd5/d2sc00789d-f1.jpg

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