Palladium-catalyzed allylation of norbornadiene: Experimental and quantum chemical research

Q3 Chemical Engineering
S. A. Durakov, K. T. Egiazaryan, R. S. Shamsiev, V. R. Flid
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引用次数: 0

Abstract

Objectives . Catalytic processes involving norbornadiene (NBD) and norbornene (NBN) derivatives provide exceptional opportunities for the synthesis of a wide range of carbocyclic hydrocarbons. By significantly expanding this range, it becomes possible to obtain materials offering a wide variety of predictable properties. The aim of the present review is to summarize the latest achievements in the creation of novel processes catalyzed by palladium compounds. Considerable attention is paid to the study of the mechanisms of NBD allylation reactions by a combination of experimental and theoretical methods. Results . Various strategies of the molecular design of palladium catalysts for syntheses based on NBN and NBD are considered. The possibility of implementing various directions of NBD allylation is demonstrated. Factors influencing the direction of the reactions, by which means individual products can be selectively obtained, are discussed. Conclusions . The effective development of new catalytic processes involving NBD and NBN derivatives requires the complex application of synthetic, kinetic, isotopic, and quantum chemical approaches. By combining instrumental and theoretical methods with constant feedback, it becomes possible to optimize the search for original catalytic systems, obtain information about the mechanisms of their action, and influence technological parameters in a targeted manner.
钯催化降冰片二烯丙基化:实验与量子化学研究
目标。降冰片二烯(NBD)和降冰片二烯(NBN)衍生物的催化过程为广泛的碳环烃的合成提供了特殊的机会。通过显著扩大这一范围,获得具有多种可预测性能的材料成为可能。本文综述了钯化合物催化合成新工艺的最新进展。通过实验与理论相结合的方法,对NBD烯丙化反应的机理进行了研究。结果。考虑了基于NBN和NBD合成钯催化剂的各种分子设计策略。证明了实现NBD烯丙化的各种方向的可能性。讨论了影响反应方向的因素,从而有选择地得到单个产物。结论。涉及NBD和NBN衍生物的新催化过程的有效开发需要复杂的合成、动力学、同位素和量子化学方法的应用。通过将仪器和理论方法与持续反馈相结合,可以优化对原始催化系统的搜索,获得有关其作用机制的信息,并有针对性地影响技术参数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Tonkie khimicheskie tekhnologii
Tonkie khimicheskie tekhnologii Chemical Engineering-Process Chemistry and Technology
CiteScore
1.40
自引率
0.00%
发文量
33
审稿时长
8 weeks
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