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Journal of Molecular Catalysis A-chemical | 1997

Catalytic oxidation with dinuclear Cu(I) macrocyclic dioxygen complexes as intermediates

Arthur E. Martell; Ramunas J. Motekaitis; Rached Menif; David A. Rockcliffe; Antoni Llobet

Abstract The investigation of dinuclear copper complexes which interact with dioxygen has been extensive because of their relevance to biological systems and oxygen active multicopper sites are found in hemocyanin, tyrosinase and polynuclear copper oxidases. Oxygenated model copper dinuclear complexes have characteristics similar to those of the dinuclear copper sites of oxytyrosinase and oxyhemocyanin. In this paper the dinuclear Cu(I) complexes of macrocyclic ligands are described and the reactivities of their dioxygen complexes for the oxidation of various substrates will be examined. Macrocyclic ligands were prepared by the 2 + 2 condensation of an aromatic dialdehyde with diethylenetriamine and with ditrimethylenetriamine. The dinuclear Cu(I) complex of the macrocyclic ligand formed by the 2 + 2 condensation of isophthaldehyde and diethylenetriamine, forms a dioxygen adduct which rapidly hydroxylates one of the benzene rings of the macrocyclic ligand. Oxygen insertion was not possible for the Cu(I) dioxygen complex of the macrocyclic ligand with furane bridging groups, and the oxygen complex was found to be stable at room temperature. In this complex the coordinated dioxygen is activated so that it readily oxidizes various substrates, such as phenols and catechols. When the Cu(II) complex thus formed oxidizes the same substrate, a catalytic system results. The substrate was oxidized by the Cu(I) dioxygen complex, which was converted to a Cu(II) complex. The latter was in turn reduced to the Cu(I) complex by oxidation of the substrate, which then combined with oxygen to continue the catalytic cycle. Similar results were obtained with the Cu(I) Cu(II) complexes of the ligand prepared by the 2 + 2 condensation of pyridine-2,6-dialdehyde and diethylenetriamine. Results obtained with analogous dinuclear-Cu(I) Cu(II) complexes with larger macrocyclic rings are described. Examples of substrates that undergo catalytic oxidation, with turnovers from 2 to 30, are 2,6-dimethoxyphenol, 2,6-ditertiarybutylphenol, hydroquinone, tertiarybutylhydroquinone and 3,5-ditertiarybutylcatechol. Schemes illustrating catalytic cycles for the oxidation of 2,6-ditertiarybutylphenol and 3,5-ditertiarybutylcatechol by molecular oxygen with the dinuclear Cu(I) Cu(II) complexes of macrocyclic ligands are presented. An interesting aspect of the present work is that the catalytically active Cu(I) dioxygen complexes with macrocyclic ligands are stable enough at room temperature, and have long enough lifetimes, to carry out two-electron oxidation of various phenolic and catecholic substrates. These models of tyrosinase are unique in that they function at room temperature. Copper dioxygen complexes reported previously decompose above −70°C with very few exceptions. Also, the Cu(I) dioxygen complexes described in this paper are the first tyrosinase models to oxidize substrates catalytically, a process that requires that the Cu(II) complexes also oxidize the same substrates.


Journal of The Chemical Society, Chemical Communications | 1989

Oxygen insertion by a new tyrosinase model binuclear CuI macrocyclic complex

Rached Menif; Arthur E. Martell

Benzene-1,3-dicarboxaldehyde and diethylenetriamine have been condensed to produce a new 24-atom tetra Schiff base binucleating macrocyclic ligand in good yield; the latter forms a dinuclear CuI complex which combines with dioxygen and inserts one of the oxygen atoms into the 2-position of the aromatic ring to form a phenolate- and hydroxide-bridged binuclear copper(II) complex.


Inorganic Chemistry | 1990

New hexaaza macrocyclic binucleating ligands. Oxygen insertion with a dicopper(I) schiff base macrocyclic complex

Rached Menif; Arthur E. Martell; Philip J. Squattrito; Abraham Clearfield


Inorganic Chemistry | 1991

Synthesis, protonation constants, and copper(II) and cobalt(II) binding constants of a new octaaza macrobicyclic cryptand: (MX)3(TREN)2. Hydroxide and carbonate binding of the dicopper(II) cryptate and crystal structures of the cryptand and of the carbonato-bridged dinuclear copper(II) cryptate

Rached Menif; Joseph H. Reibenspies; Arthur E. Martell


Archive | 2000

A method of cleaning floors and other large surfaces

Rached Menif; Marielle Jeannine Coletta Stulens


Archive | 1999

Film with UV-barrier properties

Thomas Hirn; Rached Menif


Archive | 1999

A tissue box

Martina Lenz; Rached Menif


Archive | 2007

Aperture for dispensing wipes

Yarron Bendor; Marcia Cole-Yocom; Donna Barker; Stefano Bartolucci; Johannes Lambertus Maria Mensink; Rached Menif


Archive | 2002

Container suitable for dispensing wet wipes

Marielle Jeannine Coletta Stulens; Rached Menif; Joris Jozef Gustaaf Tack


Inorganic Chemistry | 1989

Dinuclear complexes of a [30]py2N4O4 macrocyclic ligand containing two .alpha.,.alpha.'-bis(aminomethyl)pyridine moieties. Comparison with analogous 22- and 24-membered macrocyclic ligands

Rached Menif; Dian Chen; Arthur E. Martell

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