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1564313-99-0

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1564313-99-0 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 1564313-99-0 includes 10 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 7 digits, 1,5,6,4,3,1 and 3 respectively; the second part has 2 digits, 9 and 9 respectively.
Calculate Digit Verification of CAS Registry Number 1564313-99:
(9*1)+(8*5)+(7*6)+(6*4)+(5*3)+(4*1)+(3*3)+(2*9)+(1*9)=170
170 % 10 = 0
So 1564313-99-0 is a valid CAS Registry Number.

1564313-99-0Upstream product

1564313-99-0Downstream Products

1564313-99-0Relevant academic research and scientific papers

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

Gross, Elad,Shu, Xing-Zhong,Alayoglu, Selim,Bechtel, Hans A.,Martin, Michael C.,Toste, F. Dean,Somorjai, Gabor A.

, p. 3624 - 3629 (2014)

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.

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