Its porous nickel framework provides an extensive surface where hydrogen and organic molecules can adsorb. Bringing these reactants onto the same catalytic surface facilitates hydrogen transfer to unsaturated bonds, accelerating reduction reactions. The catalyst therefore affects reaction rate through surface interactions rather than by being consumed as a reagent in the overall transformation.
Porosity creates a high surface area relative to the amount of nickel present. More accessible surface allows greater contact between adsorbed hydrogen and organic substrates, supporting efficient hydrogen transfer. This structural feature explains why the catalyst can accelerate several reduction types, including reactions involving alkenes, alkynes, nitriles, and carbonyl compounds.
Concentrated sodium hydroxide dissolves much of the aluminum from a nickel-aluminum alloy. The remaining material forms a finely divided nickel framework with high surface area, producing the activated catalytic structure. Thus, the treatment is not simply a cleaning step; it creates the porous architecture responsible for the catalyst’s effectiveness in reduction chemistry.
Hydrogen first interacts with the nickel surface, while the organic molecule also becomes associated with that surface. Their proximity enables hydrogen transfer to an unsaturated portion of the substrate. Depending on the functional group, this supports reduction of carbon-carbon multiple bonds, nitriles, or carbonyl groups, as well as other transformations promoted by the catalyst.
Preparation begins with a nickel-aluminum alloy and concentrated sodium hydroxide treatment to remove much of the aluminum. After activation, the catalyst must not be allowed to dry because activated Raney nickel can ignite when dry. It therefore requires careful handling and storage under liquid, especially during laboratory preparation and use.
The catalyst supports hydrogenation and other reductions across several functional groups. Its applications include reducing alkenes, alkynes, nitriles, and carbonyl compounds, while it can also promote desulfurization. This broad reactivity makes Raney nickel useful in laboratory organic synthesis and in industrial processing where multiple classes of organic substrates may require reduction.
Dry activated Raney nickel presents an ignition hazard, so maintaining it under liquid is an essential safety measure. The precaution applies after activation, when the porous nickel framework has been formed. Careful storage protects researchers during handling and helps prevent accidental ignition in laboratory settings where the catalyst is prepared, transferred, or reused.