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在 Au 纳米团簇催化的流动微反应器中进行的多步有机转化的原位红外和 X 射线高空间分辨率微光谱测量。

In situ IR and X-ray high spatial-resolution microspectroscopy measurements of multistep organic transformation in flow microreactor catalyzed by Au nanoclusters.

机构信息

Department of Chemistry, University of California , Berkeley, California 94720, United States , and Chemical Sciences Division, Lawrence Berkeley National Laboratory, 1 Cyclotron Road, Berkeley, California 94720, United States.

出版信息

J Am Chem Soc. 2014 Mar 5;136(9):3624-9. doi: 10.1021/ja412740p. Epub 2014 Feb 19.

Abstract

Analysis of catalytic organic transformations in flow reactors and detection of short-lived intermediates are essential for optimization of these complex reactions. In this study, spectral mapping of a multistep catalytic reaction in a flow microreactor was performed with a spatial resolution of 15 μm, employing micrometer-sized synchrotron-based IR and X-ray beams. Two nanometer sized Au nanoclusters were supported on mesoporous SiO2, packed in a flow microreactor, and activated toward the cascade reaction of pyran formation. High catalytic conversion and tunable products selectivity were achieved under continuous flow conditions. In situ synchrotron-sourced IR microspectroscopy detected the evolution of the reactant, vinyl ether, into the primary product, allenic aldehyde, which then catalytically transformed into acetal, the secondary product. By tuning the residence time of the reactants in a flow microreactor a detailed analysis of the reaction kinetics was performed. An in situ micrometer X-ray absorption spectroscopy scan along the flow reactor correlated locally enhanced catalytic conversion, as detected by IR microspectroscopy, to areas with high concentration of Au(III), the catalytically active species. These results demonstrate the fundamental understanding of the mechanism of catalytic reactions which can be achieved by the detailed mapping of organic transformations in flow reactors.

摘要

在流反应器中分析催化有机转化并检测短寿命中间体对于优化这些复杂反应至关重要。在这项研究中,采用基于同步加速器的微米级红外和 X 射线束,以 15μm 的空间分辨率对流动微反应器中的多步催化反应进行了光谱映射。将负载在介孔 SiO2 上的两个纳米尺寸的 Au 纳米团簇填充在流动微反应器中,并对其进行了活化,以实现吡喃形成的级联反应。在连续流动条件下,实现了高催化转化率和可调产物选择性。同步加速器源红外微光谱原位检测了反应物乙烯基醚演变为一级产物烯丙醛,然后烯丙醛催化转化为二级产物缩醛。通过调整反应物在流动微反应器中的停留时间,对反应动力学进行了详细分析。沿流动反应器进行的原位微米级 X 射线吸收光谱扫描将红外微光谱检测到的局部增强的催化转化与 Au(III)的高浓度区域相关联,Au(III)是催化活性物种。这些结果证明了通过详细映射流反应器中的有机转化,可以实现对催化反应机制的深入理解。

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