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Efficient catalytic epoxidation of olefins with silylated Ti-TUD-1 catalysts

机译:甲硅烷基化的Ti-TUD-1催化剂对烯烃的高效催化环氧化

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Various silylated Ti-TUD-1 samples were synthesized by treating Ti-TUD-1 samples of differing Ti loadings with hexamethyldisilazane (HMDS). The silylation of silanol (Si-OH) and titanol groups (Ti-OH) on the mesoporous silica was confirmed by FTIR spectroscopy, hydrophobicity (TGA), and NH3-TPD measurements. The relatively unreactive olefins, such as 1-octene and p-tert-butylphenylallyl ether, were epoxidized using both silylated and unsilylated Ti-TUD-1 samples with different Ti loadings in the range of 1-10 wt% Ti. The catalytic epoxidation reactions were performed with commercial solutions of organic hydroperoxides as oxidants without the addition of any other organic solvent. The selectivities in peroxide utilization were found to depend on the type of olefin, oxidant, and catalyst. Using unsilylated TiTUD-1, low selectivity to epoxide was achieved for cumyl hydroperoxide (CHP), which is attributed to its facile acid-catalyzed decomposition to phenol and acetone under the reaction conditions. However, both t-butyl hydroperoxide (TBHP) and cumyl hydroperoxide yielded high selectivity to epoxide (based on converted hydroperoxide) with silylated Ti-TUD-1 samples. The selectivity to epoxide was lower for the electron-poor olefin p-tert-butylphenylallyl ether than for simple 1-octene. The experiments with CHP as the oxidant were used as a diagnostic tool to demonstrate that the enhanced epoxidation activity and selectivity of the silylated samples with TBHP can be credited to two effects of silylation. The elimination of protic Ti-OH sites of the Ti-TUD-1 catalyst resulted in a significant reduction of the competing acid-catalyzed decomposition of the peroxide, whereas the enhanced hydrophobicity of the catalyst surface enhanced the accommodation of the apolar olefinic substrate. (C) 2008 Elsevier Inc. All rights reserved.
机译:通过用六甲基二硅氮烷(HMDS)处理不同Ti含量的Ti-TUD-1样品,可以合成各种甲硅烷基化的Ti-TUD-1样品。 FTIR光谱,疏水性(TGA)和NH3-TPD测量证实了介孔二氧化硅上的硅烷醇(Si-OH)和钛醇基(Ti-OH)的甲硅烷基化。使用甲硅烷基化和未甲硅烷基化的Ti-TUD-1样品(其中Ti含量在1-10 wt%范围内)进行硅烷化和未硅烷化的Ti-TUD-1样品,将相对不活泼的烯烃(例如1-辛烯和对叔丁基苯基烯丙基醚)进行环氧化。在不添加任何其他有机溶剂的情况下,使用有机氢过氧化物的商业溶液作为氧化剂进行催化环氧化反应。发现过氧化物利用中的选择性取决于烯烃,氧化剂和催化剂的类型。使用未甲硅烷基化的TiTUD-1,对氢过氧化枯基(CHP)的环氧选择性低,这归因于其在反应条件下容易酸催化分解为苯酚和丙酮。然而,叔丁基氢过氧化物(TBHP)和枯基氢过氧化物对甲硅烷基化的Ti-TUD-1样品对环氧化物(基于转化的氢过氧化物)具有很高的选择性。贫电子的烯烃对叔丁基丁基苯基烯丙基醚的环氧化物选择性比简单的1-辛烯低。以CHP为氧化剂的实验被用作诊断工具,以证明具有TBHP的甲硅烷基化样品增强的环氧化活性和选择性可以归因于两种甲硅烷基化作用。 Ti-TUD-1催化剂的质子性Ti-OH位置的消除导致竞争性酸催化的过氧化物的分解显着减少,而催化剂表面疏水性的增强增强了非极性烯烃底物的容纳性。 (C)2008 Elsevier Inc.保留所有权利。

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