2013
DOI: 10.1021/cs4001267
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Heterogeneous Ni Catalysts for N-Alkylation of Amines with Alcohols

Abstract: Nickel nanoparticles loaded onto various supports (Ni/ MO x ) have been prepared and studied for the N-alkylation of amines with alcohols. Among the catalysts, Ni/θ-Al 2 O 3 prepared by in situ H 2reduction of NiO/θ-Al 2 O 3 shows the highest activity, and it acts as reusable heterogeneous catalyst for the alkylation of anilines and aliphatic amines with various alcohols (benzyl and aliphatic alcohols) under additive free conditions. Primary amines are converted into secondary amines and secondary amines into … Show more

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Cited by 194 publications
(118 citation statements)
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“…[11,12] For example, Zeng, [13] Shimizu, [14] Saito, [15] Feringa [16] and other groups [17] reported metal catalyzed mono-N-alkylation of primary amines with alcohols by a borrowing hydrogen transfer (BHT) methodology. Noteworthy, highly abundant and bio-relevant homogeneous transition metal catalysts such as Fe, Co and Mn which were used in the mono alkylation of primary amines with primary as well as secondary alcohols.…”
Section: Introductionmentioning
confidence: 99%
“…[11,12] For example, Zeng, [13] Shimizu, [14] Saito, [15] Feringa [16] and other groups [17] reported metal catalyzed mono-N-alkylation of primary amines with alcohols by a borrowing hydrogen transfer (BHT) methodology. Noteworthy, highly abundant and bio-relevant homogeneous transition metal catalysts such as Fe, Co and Mn which were used in the mono alkylation of primary amines with primary as well as secondary alcohols.…”
Section: Introductionmentioning
confidence: 99%
“…Nagaraja et al[10] and Sawadjoon et al[56] reached a similar conclusion in their analysis of the gas phase coupling of cyclohexanol dehydrogenation with furfural hydrogenation (T = 453-523 K, P = 1 atm) over Cu-MgO-Cr 2 O 3 and liquid phase coupling of alcohol hydrogenolysis with formic acid as hydrogen donor (T = 353 K, P = 1 atm) over Pd/carbon, respectively. Moreover, there is evidence in the literature for the formation of transitory metal-H (Cu-H[57], Ru-H[58], Ag-H[59] and Ni-H[60]) species (via interaction with hydrogen abstracted from alcohols) that can serve as a source of reactive hydrogen. In this study, the abstracted hydrogen associated with copper (Cu-H) must participate in the nitrobenzene hydrogenation step.…”
mentioning
confidence: 99%
“…However, recent years have witnessed a surge in the development of catalytic systems based on inexpensive metals[5c] such as Cu, Mn,[5a], [5b], Fe, Ni and Co.[13a], Emphasis has also been laid on using heterogeneous catalytic N ‐alkylation systems based on Pd,[12b], [14a], Au,[12a] Ag, W, Cu and Ni , . It is noteworthy that ruthenium‐based N ‐alkylation systems have enjoyed great success and have been reported with several types such as [RuX 2 (PPh 3 ) 3 ] (X = Cl,, [15e], [15r], [15s], [15t] Br[15f]), [RuH 2 (PPh 3 ) 4 ],[15e] [RuHCl(PPh 3 ) 3 ],[15f] Ru–Phosphine complexes,[15d], [15f], [15g], [15h], [15i], [15m], [15n], [15o], [15p], [15x] Ru‐cyclopentadienyl complexes, Ru–amine complexes,[15j], [15u] Ru– N ‐Heterocyclic complexes[15d], [15k] and even ruthenium–pincer complexes.…”
Section: Introductionmentioning
confidence: 99%