Big Chemical Encyclopedia

Chemical substances, components, reactions, process design ...

Articles Figures Tables About

Copper complexes models

Figure 3a. Absorption spectra of deoxy, oxy, and met forms of 2 binding blnuclear copper model complex. Also included is the resonance Raman profile for the 0-0 stretch in the oxy complex. Figure 3a. Absorption spectra of deoxy, oxy, and met forms of 2 binding blnuclear copper model complex. Also included is the resonance Raman profile for the 0-0 stretch in the oxy complex.
Turning to the X-ray absorption edge spectrum of the T3 site In T2D laccase (Figure 10a), a peak Is observed below 898A eV. This energy Is characteristic of Cu(I) while the shape of the peak suggests that It is due to three coordinate copper. The amount of reduced copper present can then be quantitated from the normalized edge intensities of copper model complexes with the appropriate... [Pg.129]

Blue Copper Model Complexes for Cu -thiolate Complexes and Fungal Laccase... [Pg.37]

Fig. 22. Copper model complexes relevant to CuNiR structure or reactivity. See text... Fig. 22. Copper model complexes relevant to CuNiR structure or reactivity. See text...
Even before the structure of galactose oxidase was characterized completely, the first copper model complexes emerged, capable of aerobic oxidation of alcohols to... [Pg.2979]

Efforts were made to obtain spectroscopic evidences for intermediates. The binding of ACV to iron(II) has been indicated by the decrease of the Mdssbauer isomer shift of the iron(II) center from 1.3 to 1.1 mm/s upon addition of ACV [156]. The appearance of a band at 508 nm after addition of ACV to an IPNS/NO complex also supports the binding of ACV to iron(II) [156, 157]. The similar electronic spectral change was observed with copper model complexes [162]. Support for the Fe-S bond in the ternary complex was obtained by EXAFS analyses [164, 165, 182]. EPR studies indicate the water coordination to the ferrous ion in an IPNS/ACV/NO complex as a model for a ternary species [156]. [Pg.324]

A number of complexes of copper with 1,1-dithiolenes are known they are interesting, inasmuch as they form (1) polynuclear species, e.g., [Cu4(i-mnt)3]2 . Recently, a copper(III) complex of 1,1-dicarboeth-oxy-2-ethylenedithiolate (DED ) was prepared (375) by oxidation of aqueous solutions of K2[Cu(DED)2] with a 10-15% excess of Cu(II) or H202, and of (BzPh3P)2[Cu(DED)2] with I2. The possibility of this system as a model for the Cu "/Cu. system in n-galactose oxidase has been pointed out. Lewis and Miller (113) also prepared M[Cu(S2C CHN02)2] (M = Cu, or Zn) and Cu[Cu S2C C(CN)2 2], and found that they are effective insecticides. [Pg.267]

In our ongoing efforts to develop oxidation catalysts that are functional in water as environmentally berrign solvent, we synthesized a water-soluble pentadentate salen ligand with polyethylene glycol side chairts (8). After coordination of copper(II) ions to the salen ligand, a dinuclear copper(II) complex is obtained that is soluble in water, methanol and mixtures of both solvents. The aerobic oxidation of 3,5-di-tert.-butylcatechol (DTBC) into 3,5-di-terr.-butylqitinone (DTBQ) was used as a model reaction to determine the catalytically active species and initial data on its catalytic activity in 80% methanol. [Pg.473]

Karlsson, T., Elgh-Dalgren, K., and Skyllberg, U., Modeling copper(II) complexation in a peat soil based on spectroscopic structural information, Soil Sci Soc Am J, 72 (5), 1286-1291, 2008. [Pg.427]

Tolman W.B. (1995) Synthetic Modeling of the Interactions of Nitrogen Oxides with Copper Proteins Copper Nitrosyl Complexes Relevant to Putative Denitrification Intermediates, Adv. Chem. Ser., 246, 195. [Pg.65]

From the standpoint of modeling Type I copper proteins,4,5,59,60 a variety of imidazole-based ligands containing thioether sulfurs and imidazole groups have been synthesized.61,62 The structures and spectroscopic properties of their copper(II) complexes (51)-(53) and (55)-(60) were investigated.65,79-82 To characterize apical copper(II)-thioether bonding, the complex (51) was... [Pg.757]

In their pursuit of modeling Type I copper proteins, Kitajima et al. reported112 a rare, tetrahedrally coordinated complex (105), which displayed an EPR spectrum consistent with the presence of the unpaired electron in the dz2 orbital.1 They also isolated a square-pyramidal DMF adduct (complex (106)). They were successful in providing structural proof of a copper(II) complex (trigonal pyramidal) with C6F5S -coordinated complex (107), with CuN3S chromo-phore.113 The X-ray analysis (poor data set) of a closely similar complex with Ph3CS as the... [Pg.768]

In an elegant approach, Comba and co-workers initiated molecular-mechanics-based models that allow the rational design of ligand systems which are able to stabilize copper-dioxygen compounds. As a part of this investigation, complexes (241) (r = 0.12),223 (242) (r = 0.31),224 and (243) (r = 0.85)224 were synthesized and the reactivity of copper(I) complexes (Section 6.6.4.2.2(iv)) with dioxygen was investigated. [Pg.785]

Copper(II) complexes with phenoxo ligands have attracted great interest, in order to develop basic coordination chemistry for their possible use as models for tyrosinase activity (dimeric complexes) and fungal enzyme galactose oxidase (GO) (monomeric complexes). The latter enzyme catalyzes the two-electron oxidation of primary alcohols with dioxygen to yield aldehyde and... [Pg.800]

Krebs and co-workers synthesized a series of dinuclear copper(II) complexes as models for catechol oxidase 91 (365) (distorted SP Cu-Cu 2.902 A), (366) (distorted five-coordinate geometry Cu-Cu 3.002A), (367) (distorted SP Cu-Cu 2.995 A), (368) (distorted five-coordinate geometry Cu-Cu 2.938 A), and (369) (distorted SP Cu-Cu 2.874 A). These complexes were characterized by spectroscopic and electrochemical methods. From kinetic analysis, a catalytic order for catecholase activity (aerial oxidation of 3,5 -di - ter t-buty lcatec h o 1) was obtained.326... [Pg.814]

In order to construct new types of binding and activating models of dioxygen molecules, Jitsukawa, Masuda and their co-workers have synthesized a novel group of tripodal tetradentate ligands and successfully utilized them in the formation of mononuclear copper(II) complexes with novel structural features (complexes (473)-(488)).395-403 This group of ligands has four... [Pg.835]

Using 1,4,8,11-tetraazacyclotetradecane, the structure of complex (800) (distorted trigonal planar Cu-Cu 6.739 A) was determined. Reactivity with 02 was investigated to demonstrate the formation of trans-l,2-peroxo species.585 As part of their work with copper(I) complexes with 02, the structure of a dicopper(I) complex ((801) distorted tetrahedral 7.04 A), supported by macrocyclic ligand environment, was reported by Comba and co-workers. Tolman and co-workers structurally characterized a three-coordinate copper(I)-phenoxide complex (802) (planar T-shaped) that models the reduced form of GO.587 The copper(I) analogue [Cu(L)][CF3-SO3]-0.43MeOI I (803) of a copper(II) complex (534) was also reported to demonstrate the role of ligand framework conformability in CV /Cu1 redox potentials.434 Wilson and co-workers... [Pg.897]


See other pages where Copper complexes models is mentioned: [Pg.227]    [Pg.116]    [Pg.121]    [Pg.526]    [Pg.154]    [Pg.1035]    [Pg.329]    [Pg.117]    [Pg.456]    [Pg.1034]    [Pg.227]    [Pg.116]    [Pg.121]    [Pg.526]    [Pg.154]    [Pg.1035]    [Pg.329]    [Pg.117]    [Pg.456]    [Pg.1034]    [Pg.173]    [Pg.115]    [Pg.156]    [Pg.288]    [Pg.37]    [Pg.116]    [Pg.754]    [Pg.760]    [Pg.760]    [Pg.764]    [Pg.767]    [Pg.768]    [Pg.778]    [Pg.781]    [Pg.807]    [Pg.832]    [Pg.842]    [Pg.847]    [Pg.877]    [Pg.897]   
See also in sourсe #XX -- [ Pg.439 , Pg.447 , Pg.450 , Pg.451 , Pg.452 ]

See also in sourсe #XX -- [ Pg.270 ]




SEARCH



Complex model

Complexation modeling

Complexation models

Complexity models

Copper complexes model compounds

Copper coordination complexes, models

Copper coordination complexes, models proteins

Copper proteins model complexes

Copper-thiolate model complexes

Dinuclear copper complexes modeling hemocyanin

Dinuclear copper proteins model complexes

Models complexation model

© 2024 chempedia.info