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Highly Selective Liquid-Phase Oxidation of Cyclohexane to KA Oil over Ti-MWW Catalyst: Evidence of Formation of Oxyl Radicals

机译:Ti-MWW催化剂上环己烷到KA油的高选择性液相氧化:氧自由基的形成证据

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Various types of Ti-containing zeolites, i.e., Ti-MWW, TS-1, Ti- MOR, and Ti-BEA, have been evaluated as candidates for the liquid-phase oxidation of cyclohexane using t-butyl hydroperoxide (TBHP, 7-8 wt %) as model oxidant. Ti-MWW zeolite displayed the highest activity for cyclohexanol and cyclohexanone (KA oil) with an overall selectivity higher than 90% at 80 °C, making this catalyst a candidate of choice for industrial KA oil production by deperoxidation of cyclohexyl hydroperoxide. The effect of the reaction temperature, reaction time, catalyst amount, and catalyst stability on Ti-MWW was surveyed in detail. The Ti-MWW catalyst showed a stable performance and could be recycled at least four times without detectable Ti leaching and loss of structural stability. The active sites for cyclohexane oxidation appeared to be located near external 12-ring cups in the Ti-MWW framework as suggested by a series of position-selective poisoning tests with tripropyl- and triphenylamine, impelling cyclohexane diffusion within the internal 10-ring channels. EPR experiments supported by DFT calculations suggested the coexistence of both Ti(IV)-OO~· (peroxyl) and Ti(IV)-O~· (oxyl) species generated through bimolecular pathways, implying simultaneously (SiO)3Ti(OOtBu) species and tBuOOH. The catalytic activity was strongly inhibited in the presence of alkenes, leading to the preferential formation of the epoxidation product with no detectable formation of radicals. Notably, this is the first time that oxyl species have been detected particularly with the help of DFT calculations. Predicted differences of g tensors between peroxyl and oxyl species at various hydration levels in the presence of cyclohexane were consistent with the EPR spectra.
机译:已经评估了各种类型的含Ti沸石,例如Ti-MWW,TS-1,Ti-MOR和Ti-BEA,作为使用叔丁基过氧化氢(TBHP,7- 8wt%)作为模型氧化剂。 Ti-MWW沸石对环己醇和环己酮(KA油)表现出最高的活性,在80°C时的总选择性高于90%,这使该催化剂成为通过环己基氢过氧化物的过氧化进行工业KA油生产的选择的候选人。详细研究了反应温度,反应时间,催化剂用量和催化剂稳定性对Ti-MWW的影响。 Ti-MWW催化剂表现出稳定的性能,可以循环使用至少四次,而没有Ti的浸出和结构稳定性的损失。环己烷氧化的活性位点似乎位于Ti-MWW框架中的外部12环杯附近,这是通过对三丙基和三苯胺进行的一系列位置选择性中毒测试表明的,从而促使环己烷在内部10环通道内扩散。 DFT计算支持的EPR实验表明,通过双分子途径生成的Ti(IV)-OO〜·(过氧)和Ti(IV)-O〜·(氧)物种共存,同时暗示(SiO)3Ti(OOtBu)物种和tBuOOH。在烯烃存在下,催化活性被强烈抑制,导致优先形成环氧化产物,而没有可检测到的自由基形成。值得注意的是,这是首次检测到羟基物种,特别是借助DFT计算。在环己烷存在下,在不同水合水平下,过氧化氢和氧化氢之间的g张量的预测差异与EPR谱一致。

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