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高活性钌复分解催化剂可实现环戊二烯在低温下的开环复分解聚合反应。

Highly active ruthenium metathesis catalysts enabling ring-opening metathesis polymerization of cyclopentadiene at low temperatures.

作者信息

Song Kitaek, Kim Kunsoon, Hong Daeun, Kim Jungwon, Heo Chae Eun, Kim Hugh I, Hong Soon Hyeok

机构信息

Department of Chemistry, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, 34141, Republic of Korea.

Department of Chemistry, College of Natural Sciences, Seoul National University, Seoul, 08826, Republic of Korea.

出版信息

Nat Commun. 2019 Aug 27;10(1):3860. doi: 10.1038/s41467-019-11806-5.

Abstract

Development of versatile ruthenium olefin-metathesis catalysts with high activity, stability, and selectivity is a continuous challenge. Here we report highly controllable ruthenium catalysts using readily accessible and versatile N-vinylsulfonamides as carbene precursors. Catalyst initiation rates were controlled in a straightforward manner, from latent to fast initiating, through the facile modulation of the N-vinylsulfonamide ligands. Trifluoromethanesulfonamide-based catalysts initiated ultrarapidly even at temperatures as low as -60 °C and continuously propagated rapidly, enabling the enthalpically and entropically less-favored ring-opening metathesis polymerizations of low-strained functionalized cyclopentene derivatives, some of which are not accessible with previous olefin-metathesis catalysts. To our surprise, the developed catalysts facilitated the polymerization of cyclopentadiene (CPD), a feedstock that is easily and commonly obtainable through the steam cracking of naphtha, which has, to the best of our knowledge, not been previously achieved due to its low ring strain and facile dimerization even at low temperatures (below 0 °C).

摘要

开发具有高活性、稳定性和选择性的通用型钌烯烃复分解催化剂一直是一项持续的挑战。在此,我们报告了使用易于获得且通用的N-乙烯基磺酰胺作为卡宾前体的高度可控的钌催化剂。通过对N-乙烯基磺酰胺配体的简便调节,以直接的方式控制催化剂的引发速率,从潜伏型到快速引发型。基于三氟甲磺酰胺的催化剂即使在低至-60°C的温度下也能超快速引发,并持续快速传播,实现了低应变官能化环戊烯衍生物的开环复分解聚合反应,这些反应在焓和熵方面都不太有利,其中一些是以前的烯烃复分解催化剂无法实现的。令我们惊讶的是,所开发的催化剂促进了环戊二烯(CPD)的聚合,环戊二烯是一种通过石脑油蒸汽裂解容易且常见获得的原料,据我们所知,由于其环应变低且即使在低温(低于0°C)下也容易二聚,以前从未实现过这种聚合。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/50d6/6712042/d9a21555ae11/41467_2019_11806_Fig1_HTML.jpg

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