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s-Block cooperative catalysis: alkali metal magnesiate-catalysed cyclisation of alkynols

机译:s-Block协同催化:镁碱金属镁催化的炔醇环化

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摘要

Mixed s-block metal organometallic reagents have been successfully utilised in the catalytic intramolecular hydroalkoxylation of alkynols. This success has been attributed to the unique manner in which these reagents can overcome the challenges of the reaction: namely OH activation and coordination to and then addition across a CC bond. In order to optimise the reaction conditions and to garner vital catalytic system requirements, a series of alkali metal magnesiates were enlisted for the catalytic intramolecular hydroalkoxylation of 4-pentynol. In a prelude to the main investigation, the homometallic magnesium dialkyl reagent MgR2 (where R = CH2SiMe3) was utilised. This reagent was unsuccessful in cyclising the alcohol into 2-methylenetetrahydrofuran >2a or 5-methyl-2,3-dihydrofuran >2b, even in the presence of multidentate Lewis donor molecules such as N,N,N′,N′′,N′′-pentamethyldiethylenetriamine (PMDETA). Alkali metal magnesiates MIMgR3 (when MI = Li, Na or K) performed the cyclisation unsatisfactorily both in the absence/presence of N,N,N′,N′-tetramethylethylenediamine (TMEDA) or PMDETA. When higher-order magnesiates (i.e., MI2MgR4) were employed, in general a marked increase in yield was observed for MI = Na or K; however, the reactions were still sluggish with long reaction times (22–36 h). A major improvement in the catalytic activity of the magnesiates was observed when the crown ether molecule 15-crown-5 was combined with sodium magnesiate Na2MgR4(TMEDA)2 furnishing yields of 87% with >2a : >2b ratios of 95 : 5 after 5 h. Similar high yields of 88% with >2a : >2b ratios of 90 : 10 after 3 h were obtained combining 18-crown-6 with potassium magnesiate K2MgR4(PMDETA)2. Having optimised these systems, substrate scope was examined to probe the range and robustness of 18-crown-6/K2MgR4(PMDETA)2 as a catalyst. A wide series of alkynols, including terminal and internal alkynes which contain a variety of potentially reactive functional groups, were cyclised. In comparison to previously reported monometallic systems, bimetallic 18-crown-6/K2MgR4(PMDETA)2 displays enhanced reactivity towards internal alkynol-cyclisation. Kinetic studies revealed an inhibition effect of substrate on the catalysts via adduct formation and requiring dissociation prior to the rate limiting cyclisation step.
机译:混合的S嵌段金属有机金属试剂已成功地用于炔醇的分子内加氢烷氧基化反应。这种成功归因于这些试剂可以克服反应挑战的独特方式:即OH活化并配位到C!-priv-char pc1-> C键上。为了优化反应条件并满足重要的催化体系要求,选择了一系列碱金属氧化镁进行4-戊炔醇的分子内加氢烷氧基化反应。在进行主要研究的序幕中,使用了均金属二烷基镁镁试剂MgR2(其中R = CH2SiMe3)。即使在存在多齿Lewis供体分子(例如)的情况下,该试剂也无法成功地将醇环化成2-亚甲基四氢呋喃> 2a 或5-甲基-2,3-二氢呋喃> 2b N,N,N',N'',N''-五甲基二亚乙基三胺(PMDETA)。碱金属镁盐M I MgR3(当M I = Li,Na或K时)在不存在/存在N,N,N',N的情况下均不能令人满意地进行环化'-四甲基乙二胺(TMEDA)或PMDETA。当使用更高阶的镁酸盐(即M I 2MgR4)时,通常观察到M I = Na或K的产率显着增加;但是,反应时间长(22-36小时),反应仍然缓慢。当冠醚分子15-cro-5与镁酸钠Na2MgR4(TMEDA)2结合使用时,镁氧化物的催化活性得到了重大改善,> 2a :> 5小时后2b 比率为95:5。结合18-crown-6和镁氧钾K2MgR4(PMDETA)2,在3小时后获得类似的88%高产,> 2a :> 2b 比为90:10。优化了这些系统后,检查了底物范围以探测18冠-6 / K2MgR4(PMDETA)2作为催化剂的范围和坚固性。一系列炔烃,包括含有各种潜在反应性官能团的末端炔烃和内部炔烃,都被环化了。与以前报道的单金属体系相比,双金属18-crown-6 / K2MgR 4 (PMDETA) 2 对内部炔醇环化反应的反应性增强。动力学研究揭示了底物通过加合物形成对催化剂的抑制作用,并且需要在限速环化步骤之前解离。

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