Department of Chemistry and Biochemistry, Florida State University, Tallahassee, FL 32306, USA.
Institute of Chemical Kinetics and Combustion, Siberian Branch of the Russian Academy of Science, 630090 Novosibirsk, Russia.
Molecules. 2019 Mar 15;24(6):1036. doi: 10.3390/molecules24061036.
The high energy packed in alkyne functional group makes alkyne reactions highly thermodynamically favorable and generally irreversible. Furthermore, the presence of two orthogonal π-bonds that can be manipulated separately enables flexible synthetic cascades stemming from alkynes. Behind these "obvious" traits, there are other more subtle, often concealed aspects of this functional group's appeal. This review is focused on yet another interesting but underappreciated alkyne feature: the fact that the CC alkyne unit has the same oxidation state as the -CH2C(O)- unit of a typical carbonyl compound. Thus, "classic carbonyl chemistry" can be accessed through alkynes, and new transformations can be engineered by unmasking the hidden carbonyl nature of alkynes. The goal of this review is to illustrate the advantages of using alkynes as an entry point to carbonyl reactions while highlighting reports from the literature where, sometimes without full appreciation, the concept of using alkynes as a hidden entry into carbonyl chemistry has been applied.
炔烃官能团所具有的高能量使其反应在热力学上非常有利,且通常是不可逆的。此外,由于存在两个可以单独操作的正交π键,这使得源自炔烃的灵活合成级联成为可能。在这些“明显”的特征背后,还有这个官能团更微妙、常常被隐藏的吸引力方面。本篇综述聚焦于炔烃的另一个有趣但未被充分重视的特征:CC 炔烃单元与典型羰基化合物的 -CH2C(O)-单元具有相同的氧化态。因此,可以通过炔烃来访问“经典羰基化学”,并且可以通过揭示炔烃隐藏的羰基性质来设计新的转化。本篇综述的目的是说明将炔烃用作进入羰基反应的切入点的优势,同时强调文献中的报道,在这些报道中,有时并没有充分认识到,将炔烃用作进入羰基化学的隐藏入口的概念已经得到了应用。