Date published: 2025-10-19

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Aluminum-nickel catalyst (CAS 12635-27-7)

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Application:
Aluminum-nickel catalyst is a Raney-type alloy
CAS Number:
12635-27-7
Molecular Weight:
85.67
Molecular Formula:
AlNi
Supplemental Information:
This is classified as a Dangerous Good for transport and may be subject to additional shipping charges.
For Research Use Only. Not Intended for Diagnostic or Therapeutic Use.
* Refer to Certificate of Analysis for lot specific data.

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Aluminum-nickel catalyst is extensively used in research focused on chemical catalysis, particularly in hydrogenation reactions and the processing of hydrocarbons. This catalyst is noted for its effectiveness in enhancing the reaction rates of hydrogenation, where its unique properties derived from the combination of aluminum and nickel play a role. In research, the Aluminum-nickel catalyst is also explored for its potential in other types of reduction reactions and its ability to perform under various environmental conditions, making it versatile for industrial applications. Moreover, studies often investigate the surface properties and stability of the Aluminum-nickel catalyst, aiming to optimize its performance and longevity in continuous processes.


Aluminum-nickel catalyst (CAS 12635-27-7) References

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  2. Photostimulated reactions of 2-bromopyridine and 2-chloroquinoline with nitrile-stabilized carbanions and certain other nucleophiles  |  Moon, M. P., Komin, A. P., Wolfe, J. F., & Morris, G. F. 1983. The Journal of Organic Chemistry. 48(14): 2392-2399.
  3. Lithiation of. alpha.-nitrosaminoalkyl ethers. Synthetic equivalents of. alpha.-primary amino carbanions  |  Saavedra, J. E. 1983. The Journal of Organic Chemistry. 48(14): 2388-2392.
  4. Reductive Cleavage of N-Nitrosooxazolidines to Amines with Al-Ni Alloy. Reduction to Secondary n-Alkylalkanolamines  |  Saavedra, J. E. 1985. Organic Preparations and Procedures International. 17(3): 155-162.
  5. Effects of nickel catalyst composition on the rate and selectivity of carbon dioxide hydrogenation.  |  Zubanova, L. G., Krotova, I. N., Molina, S. E., Sevost'yanov, V. P., & Kuz'mina, R. I. 1999. Theoretical and Experimental Chemistry. 35(5): 290-296.
  6. Morphology and structure of carbon resulting from decomposition of chlorohydrocarbons on nickel and cobalt containing catalysts  |  Mishakov, I. V., Chesnokov, V. V., Buyanov, R. A., & Chuvilin, A. L. 2002. Reaction Kinetics and Catalysis Letters. 76: 361-367.
  7. Modeling the process of producing hydrogen from methane  |  Dubinin, A. M., Tuponogov, V. G., & Ikonnikov, I. S. 2013. Theoretical Foundations of Chemical Engineering. 47(6): 697-701.
  8. Transfer-free grown bilayer graphene transistors for digital applications  |  Wessely, P. J., Wessely, F., Birinci, E., Riedinger, B., & Schwalke, U. 2013. Solid-state electronics. 81: 86-90.
  9. Insitu CCVD grown bilayer graphene transistors for applications in nanoelectronics  |  Wessely, P. J., & Schwalke, U. 2014. Applied surface science. 291: 83-86.
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  11. Low-Temperature Conversion of ortho-Hydrogen to para-Hydrogen over Ni/Al2O3 Supported Catalysts  |  Zhuzhgov, A. V., Krivoruchko, O. P., & Isupova, L. A. 2020. Russian Journal of Physical Chemistry A. 94: 58–66.
  12. Effect of Nickel-Containing Catalyst on the Tar Coking Process  |  Chesnokov, V. V., Chichkan', A. S., & Parmon, V. N. 2021. Catalysis in Industry. 13(2): 143–149.
  13. Oxy-CO2 reforming of CH4 on Ni-based catalysts: Evaluation of cerium and aluminum addition on the structure and properties of the reduced materials  |  da Silva, B. C., Bastos, P. H. C., Junior, R. B., Checca, N. R., Costa, D. S., Frety, R., & Brandão, S. T. 2021. Catalysis Today. 381: 50-64.

Ordering Information

Product NameCatalog #UNITPriceQtyFAVORITES

Aluminum-nickel catalyst, 100 g

sc-239220
100 g
$82.00