TY - JOUR
T1 - Catalytic activity of a new Ru(ii) complex for the hydrogen transfer reaction of acetophenone and
T2 - N -benzylideneaniline: Synthesis, characterization and relativistic DFT approaches
AU - Pérez-Zúñiga, C.
AU - Negrete-Vergara, C.
AU - Yáñez, Mauricio
AU - Aguirre, Pedro
AU - Zúñiga, César A.
AU - Cantero-López, Plinio
AU - Arratia-Pérez, Ramiro
AU - Moya, Sergio A.
N1 - Publisher Copyright:
© 2019 The Royal Society of Chemistry and the Centre National de la Recherche Scientifique.
PY - 2019
Y1 - 2019
N2 - The synthesis and characterization of a new ruthenium(ii) complex containing a hemilabile P^N-ligand are reported. The catalytic activity of this complex was evaluated in the hydrogen transfer reaction of acetophenone and N-benzylideneaniline achieving conversions around 35 and 96% respectively. Condensed Fukui functions in a relativistic DFT scheme show that the regions for the electrophilic (f-) and nucleophilic (f+) attack are Cl- in the axial position, regions belonging to the P^N ligand and the metal center. The lability of the ligands is determined using different theoretical approaches like Morokuma-Ziegler energy decomposition analysis combined with the Extended Transition State with Natural Orbitals of Chemical Valence (ETS-NOCV). The major lability for the -Cl ligand (protic environment) is ideal for designing a new ruthenium hydride complex, suitable for catalytic applications. The σ-donation determines the degree of covalence of the chemical bond involving a lower trend to dissociate, as is the case of the P^N-ligand. The most important excitation energies appear in the region between 250 and 410 nm and are assigned to ligand to ligand charge transfer (LLCT) and metal to ligand charge transfer (MLCT) transitions.
AB - The synthesis and characterization of a new ruthenium(ii) complex containing a hemilabile P^N-ligand are reported. The catalytic activity of this complex was evaluated in the hydrogen transfer reaction of acetophenone and N-benzylideneaniline achieving conversions around 35 and 96% respectively. Condensed Fukui functions in a relativistic DFT scheme show that the regions for the electrophilic (f-) and nucleophilic (f+) attack are Cl- in the axial position, regions belonging to the P^N ligand and the metal center. The lability of the ligands is determined using different theoretical approaches like Morokuma-Ziegler energy decomposition analysis combined with the Extended Transition State with Natural Orbitals of Chemical Valence (ETS-NOCV). The major lability for the -Cl ligand (protic environment) is ideal for designing a new ruthenium hydride complex, suitable for catalytic applications. The σ-donation determines the degree of covalence of the chemical bond involving a lower trend to dissociate, as is the case of the P^N-ligand. The most important excitation energies appear in the region between 250 and 410 nm and are assigned to ligand to ligand charge transfer (LLCT) and metal to ligand charge transfer (MLCT) transitions.
UR - http://www.scopus.com/inward/record.url?scp=85068346634&partnerID=8YFLogxK
U2 - 10.1039/c8nj06250a
DO - 10.1039/c8nj06250a
M3 - Article
AN - SCOPUS:85068346634
SN - 1144-0546
VL - 43
SP - 10545
EP - 10553
JO - New Journal of Chemistry
JF - New Journal of Chemistry
IS - 26
ER -