The catalytic properties of the title cluster toward the homogeneous hydrogenation of phenylacetylene, diphenylethyne and phenyl-1-propyne have been investigated as a function of temperature, pressure, solvents, substrate and cluster concentrations, and counterions. The title cluster is a precatalyst that exhibits a good catalytic activity under mild conditions (1 atm of H(2) at 20 degrees C) for the hydrogenation of alkynes and alkenes. For the alkyne substrates, the turnover frequencies (tof's) range between 200 and 500 h(-)(1), and the product distribution varies as: cis-products, 75-90%; trans-products; 0-8% after 3 h of reaction. Based on the graphs -d[substrate]/dt vs [Pd(4)](1/2), the mechanism indicates a cluster dissociation into two dimers (presumably of the type Pd(2)(dppm)(2)(H)(solvent)(+)). The variations of tof (or -d[substrate]/dt) as a function of [substrate] and pressure of H(2) are linear. At 1600 psi of H(2), the tof can reach 2500-3000 h(-)(1) (in THF). The tof also increases with temperature reaching a maximum at approximately 35 degrees C (tof: 1000-1300 h(-)(1)), but at higher temperatures cluster decomposition begins to occur, leading to a rapid decrease in rates of catalysis. At 50 degrees C, no catalysis is observed. The hydrogenation reaction can be stopped at the corresponding cis-alkenes with approximately 95% yields, depending on the substrate and experimental conditions used. The tof's also vary with the solvent, where stronger coordinating solvent molecules give higher tof's. In addition, the tof's do not change with the nature of the counterion, which acts as "spectator" in the catalysis.
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Angew Chem Int Ed Engl
January 2025
CNRS/UCSD, Chemistry, University of California, San Diego, 5213 Pacific Hall,, Department of Chemistry, 92093-0343, La jolla, UNITED STATES.
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December 2024
School of Environmental and Chemical Engineering, Jiangsu University of Science and Technology, Zhenjiang 212003, Jiangsu, P. R. China.
A protocol of amide-to-amine transformation that is convenient, mild, and easy to perform is a long-sought goal from the viewpoint of catalysis. Herein, we have utilized easily accessible W(CO)(NCMe) as a precatalyst for the deoxygenative reduction of 1°, 2° and 3° amides under mild conditions. Mechanism studies unraveled that the generated is potentially a vital species in activating C═O of amides by providing the H-bonding network during the catalytic cycle.
View Article and Find Full Text PDFInorg Chem
November 2024
Department of Chemistry, Indian Institute of Technology Jammu Jagti, Jammu 181221, India.
The Herrmann-Beller catalyst, Pd[(C^P)(μ-OAc)], is readily formed by reaction of the cyclic trimer of 'Pd(OAc)' with P(-tol). In the presence of hydroxide, Pd(C^P)(μ-OAc)] converts to [Pd(C^P)(μ -OH)]. Here, we report how this activated Pd precatalyst species, and related species, serve as a conduit for formation of higher order Pd clusters containing multiple cyclopalladated P(-tol) ligands.
View Article and Find Full Text PDFInorg Chem
October 2024
Shandong University, Department of Chemistry and Chemical Engineering, Shanda South Road 27, 250100 Jinan, China.
We report a high nuclear (Cu) complex synthesized via the self-assembly of copper-methylsilsesquioxane induced by the complexation with 1,2-bis(diphenylphosphino)ethane (dppe). The structure includes two cationic Cu(dppe) moieties and an anionic silsesquioxane cage of an unprecedented Cu structural type. The Cu cage fragment exhibits a unique () combination of Si-cyclic/Si-acyclic silsesquioxane ligands and () encapsulation of two different chloride and carbonate species.
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