高效环保无溶剂制备具有高生物潜力的双硒烯烃

Pâmella S. Cordeiro, M. Prado, José Neto, Vanessa Nascimento
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引用次数: 0

摘要

有机硫属化合物,特别是有机硒化合物,由于其大量的合成和生物应用而得到了广泛的研究。在有机硒化合物中,一类双硒化烯烃衍生物引起了人们的广泛关注。近年来,人们对乙烯基硫原衍生物的合成进行了一些研究,因为它们在一些合成应用中也是很有价值的中间体。然而,迄今为止开发的方法有很长的反应时间,并且使用有毒溶剂和重金属。因此,迫切需要开发符合绿色化学原理的合成这些分子的方案。在这项工作中,我们开发了一种替代合成双硒烯烃衍生物,通过一种环境适宜的方法。以二苯基乙炔和二苯基二苯二烯为原料,在微波辐射和常规加热条件下,以i2 /DMSO为催化体系,考察了反应的优化效果。这些条件的变化是通过试剂、催化剂(I 2)的用量、温度、DMSO和反应过程(微波或常规)之间的不同当量来进行的。目前发现,二苯基乙炔、二苯基二烯、30 mol% i2在DMSO中,在100°C微波辐照10 min的条件下,产物收率为82%,并用1H和13C NMR对产物进行了表征。因此,正在开发的方法,除了完全符合绿色化学的原则外,将允许评估使用不同的烯烃和二硒化物甚至二硫化物和二碲化物的反应范围。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficient Eco-Friendly Solvent-Free Obtaining Bis-Selenium-Alkenes with High Biological Potential
: Organocalcogenides, in particular, organoselenium compounds, have been widely studied due to their large number of synthetic and biological applications. Among organoselenium compounds, a class of bis-selenide-alkene derivatives has attracted attention. Recently, some studies have been developed for the synthesis of vinyl chalcogen derivatives, since these are also highly valuable intermediates in several synthetic applications. However, the methodologies developed so far have extensive reaction times, and use toxic solvents as well as heavy metals. Therefore, there is an emerging need to develop protocols for the synthesis of these molecules that are in accordance with the principles of green chemistry. In this work, we developed an alternative synthesis of bis-selenium-alkene derivatives, through an environmentally appropriate methodology. Reaction optimization was evaluated from the diphenylacetylene and diphenyl diselenide, using I 2 /DMSO as a catalytic system under microwave irradiation or conventional heating. The variations of these conditions were carried out through different equivalences between the reagents, the amount of catalyst (I 2 ), temperature, DMSO and the reaction process (Microwave or conventional). Even now, it was found that the best established condition was using diphenylacetylene, diphenyl diselenide, 30 mol% I 2 in DMSO, under microwave irradiation at 100 °C for 10 min. In this condition, the product was obtained in 82% yield and its characterization was performed using 1H and 13C NMR spectroscopy. Therefore, the methodology that is being developed, in addition to perfectly attending to the principles of green chemistry, will allow to evaluate the reaction scope using different alkenes and diselenides or even disulfides and ditellurides.
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