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新型有毒气体替代物的创制及安全简便催化反应的开发

Creation of Novel Toxic Gas Surrogates and the Development of Safe and Facile Catalytic Reactions.

作者信息

Konishi Hideyuki

机构信息

School of Pharmaceutical Sciences, University of Shizuoka.

出版信息

Chem Pharm Bull (Tokyo). 2018;66(1):1-19. doi: 10.1248/cpb.c17-00795.

Abstract

The use of toxic gas surrogates in organic reactions instead of the gas itself contributes to enhancing the safety, practicality, and efficiency of the reactions involved. Our efforts toward the creation of toxic gas surrogates and the development of a series of catalytic reactions using these surrogates are described. Improvements in substrate scope during the hydroesterification of alkenes using formates facilitated by the Ru-imidazole catalyst system provided the opportunity to discover that phenyl formate is a useful carbon monoxide (CO) surrogate for the generation of CO and phenol under weakly basic conditions. This discovery triggered the development of highly reactive but stable CO surrogates and a variety of Pd-catalyzed carbonylative transformations. N-Formylsaccharin facilitated the use of additional nucleophiles in carbonylation reactions that provided access to a variety of carbonyl compounds. Detailed experimental and theoretical mechanistic studies into the generation of CO from phenyl formate suggest that CO generation proceeds via a concerted E2 α-elimination. Furthermore, a known surrogate of sulfur dioxide was applied for the first time to the selective syntheses of cyclic sulfonamides and sulfinamides, confirming that the surrogate operates as an "S=O" source. Notably, the reactions described herein are scalable and can be performed without the use of external toxic gases and specialized reaction vessels; they are easy and simple to perform and demonstrate enormous potential for industrial application.

摘要

在有机反应中使用有毒气体替代物而非气体本身,有助于提高相关反应的安全性、实用性和效率。本文描述了我们在创建有毒气体替代物以及开发一系列使用这些替代物的催化反应方面所做的努力。在钌 - 咪唑催化剂体系促进下,使用甲酸酯对烯烃进行氢酯化反应时底物范围的拓展,为发现甲酸苯酯在弱碱性条件下是用于生成一氧化碳(CO)和苯酚的有用一氧化碳替代物提供了契机。这一发现引发了高反应活性但稳定的一氧化碳替代物以及各种钯催化的羰基化转化反应的开发。N - 甲酰基糖精促进了在羰基化反应中使用额外的亲核试剂,从而能够获得各种羰基化合物。对由甲酸苯酯生成一氧化碳的详细实验和理论机理研究表明,一氧化碳的生成是通过协同的E2α消除反应进行的。此外,一种已知的二氧化硫替代物首次应用于环状磺酰胺和亚磺酰胺的选择性合成,证实该替代物可作为“S = O”源。值得注意的是,本文所述反应具有可扩展性,无需使用外部有毒气体和专门的反应容器即可进行;它们操作简便,具有巨大的工业应用潜力。

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