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From the Cover: A Cu2O2+ core in Cu-ZSM-5 the active site in the oxidation of methane to methanol

机译:从封面开始:Cu-ZSM-5中的Cu2O 2+核是甲烷氧化为甲醇的活性位点

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摘要

Driven by the depletion of crude oil, the direct oxidation of methane to methanol has been of considerable interest. Promising low-temperature activity of an oxygen-activated zeolite, Cu-ZSM-5, has recently been reported in this selective oxidation and the active site in this reaction correlates with an absorption feature at 22,700 cm−1. In the present study, this absorption band is used to selectively resonance enhance Raman vibrations of this active site. 18O2 labeling experiments allow definitive assignment of the observed vibrations and exclude all previously characterized copper-oxygen species for the active site. In combination with DFT and normal coordinate analysis calculations, the oxygen activated Cu core is uniquely defined as a bent mono-(μ-oxo)dicupric site. Spectroscopically validated electronic structure calculations show polarization of the low-lying singly-occupied molecular orbital of the [Cu2O]2+ core, which is directed into the zeolite channel, upon approach of CH4. This induces significant oxyl character into the bridging O atom leading to a low transition state energy consistent with experiment and explains why the bent mono-(μ-oxo)dicupric core is highly activated for H atom abstraction from CH4. The oxygen intermediate of Cu-ZSM-5 is now the most well defined species active in the methane monooxygenase reaction.
机译:在原油枯竭的驱动下,甲烷直接氧化为甲醇受到了极大的关注。最近在这种选择性氧化中报道了一种氧活化沸石Cu-ZSM-5的有希望的低温活性,该反应的活性部位与在22,700 cm -1 处的吸收特征相关。 。在本研究中,该吸收带用于选择性共振增强该活性位点的拉曼振动。 18 O2标记实验允许对观察到的振动进行明确分配,并且排除了所有先前表征的活性部位的铜-氧物种。结合DFT和法向坐标分析计算,将氧激活的Cu核独特地定义为弯曲的单(μ-氧代)二重位。经光谱验证的电子结构计算表明,当接近CH4时,[Cu2O] 2 + 核的低位单占据分子轨道发生极化,该轨道被引导进入沸石通道。这会在桥接的O原子中诱导明显的氧基特征,从而导致较低的过渡态能量,这与实验相符,并解释了为什么弯曲的单-(μ-氧代)双化核被高度激活以从CH4提取H原子。现在,Cu-ZSM-5的氧中间体是在甲烷单加氧酶反应中最明确定义的物种。

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