涉及钯催化转化/双极环加成反应的三组分级联过程,用于合成角状杂三喹啉衍生物。

IF 4.4 2区 化学 Q2 CHEMISTRY, APPLIED
Predrag Jovanovic, Milos Jovanovic, Milos Petkovic, Milena Simic, Gordana Tasic, Marko Rodic, Srdjan Rakic, Filip Vlahovic, Vladimir Savic
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引用次数: 0

摘要

封面图片是由人工智能根据我们对景观的描述生成的。瀑布象征着图片上示意性描述的级联转化。在钯催化过程中,含有近端烯的起始肟经过多次原位转化,得到三喹烷类型的产物。级联流涉及三个组分,并在一次操作中生成四个新键。更多详情可参见 P. Jovanovic、V. Savic 及其合作者的文章(P. Jovanovic、M. Jovanovic、M. Petkovic、M. Simic、G. Tasic、M. Rodic、S. Rakic、F. Vlahovic、V. Savic、Adv. Synth.Catal.2024, 366, DOI: 10.1002/adsc.202400253)
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Front Cover Picture: Three Component Cascade Processes Involving Palladium Catalyzed Transformations/Dipolar Cycloadditions for the Synthesis of Angular Heterotriquinane Derivatives (Adv. Synth. Catal. 17/2024)

Front Cover Picture: Three Component Cascade Processes Involving Palladium Catalyzed Transformations/Dipolar Cycloadditions for the Synthesis of Angular Heterotriquinane Derivatives (Adv. Synth. Catal. 17/2024)

Front Cover Picture: Three Component Cascade Processes Involving Palladium Catalyzed Transformations/Dipolar Cycloadditions for the Synthesis of Angular Heterotriquinane Derivatives (Adv. Synth. Catal. 17/2024)

The front cover picture was generated by artificial intelligence around our description of the landscape we intended to create. The cascade waterfall symbolizes the cascade transformation depicted schematically on the image. The starting oxime containing a proximal allene in palladium catalyzed process undergoes several in situ transformations to afford the triquinane type product. The cascade stream involves three components and creates four new bonds in a single operation. More details can be found in article by P. Jovanovic, V. Savic and co-workers (P. Jovanovic, M. Jovanovic, M. Petkovic, M. Simic, G. Tasic, M. Rodic, S. Rakic, F. Vlahovic, V. Savic, Adv. Synth. Catal. 2024, 366, DOI: 10.1002/adsc.202400253)

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来源期刊
Advanced Synthesis & Catalysis
Advanced Synthesis & Catalysis 化学-应用化学
CiteScore
9.40
自引率
7.40%
发文量
447
审稿时长
1.8 months
期刊介绍: Advanced Synthesis & Catalysis (ASC) is the leading primary journal in organic, organometallic, and applied chemistry. The high impact of ASC can be attributed to the unique focus of the journal, which publishes exciting new results from academic and industrial labs on efficient, practical, and environmentally friendly organic synthesis. While homogeneous, heterogeneous, organic, and enzyme catalysis are key technologies to achieve green synthesis, significant contributions to the same goal by synthesis design, reaction techniques, flow chemistry, and continuous processing, multiphase catalysis, green solvents, catalyst immobilization, and recycling, separation science, and process development are also featured in ASC. The Aims and Scope can be found in the Notice to Authors or on the first page of the table of contents in every issue.
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