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1.
Dalton Trans ; 52(43): 15665-15668, 2023 Nov 07.
Article in English | MEDLINE | ID: mdl-37882137

ABSTRACT

A class of Gd(III) coiled coils achieve high MRI relaxivity, in part due to their slow rotational correlation time. However, extending their length is unable to further enhance performance, as the mechanism by which relaxivity is achieved is dominated by the presence of three inner sphere waters in rapid exchange, through an associative mechanism.

2.
Dalton Trans ; 43(14): 5274-9, 2014 Apr 14.
Article in English | MEDLINE | ID: mdl-24572679

ABSTRACT

The previously reported carbon dioxide fixation reaction by the planar terminal hydroxide complex [Ni(pyN2(Me2))(OH)](1-) in DMF has been further characterized by determination of the equilibrium constants K(eq)²98 = 2.4 ± 0.2 × 10(5) M(-1) and K(eq)²²³ = 1.3 ± 0.1 × 10(7) M(-1), as well as the volume of activation for the CO2 binding (ΔV(on)(≠223) = -21 ± 3 cm(3) mol(-1)) and back decarboxylation (ΔV(off)(≠223) = -13 ± 1 cm(3) mol(-1)) by high-pressure kinetics. The data are consistent with an earlier DFT computation, including the probable nature of the transition state, and support designating the reaction as one of the most completely investigated carbon dioxide fixation reactions of any type.


Subject(s)
Carbon Dioxide/chemistry , Coordination Complexes/chemistry , Hydroxides/chemistry , Nickel/chemistry , Carbon Sequestration , Kinetics , Pressure , Thermodynamics
3.
Dalton Trans ; 41(2): 546-57, 2012 Jan 14.
Article in English | MEDLINE | ID: mdl-22045167

ABSTRACT

The solution behavior of iron(III) and iron(II) complexes of 5(4),10(4),15(4),20(4)-tetra-tert-butyl-5,10,15,20-tetraphenylporphyrin (H(2)tBuTPP) and the reaction with superoxide (KO(2)) in DMSO have been studied in detail. Applying temperature and pressure dependent NMR studies, the thermodynamics of the low-spin/high-spin equilibrium between bis- and mono-DMSO Fe(II) forms have been quantified (K(DMSO) = 0.082 ± 0.002 at 298.2 K, ΔH° = +36 ± 1 kJ mol(-1), ΔS° = +101 ± 4 J K(-1) mol(-1), ΔV° = +16 ± 2 cm(3) mol(-1)). This is a key activation step for substitution and inner-sphere electron transfer. The superoxide binding constant to the iron(II) form of the studied porphyrin complex was found to be (9 ± 0.5) × 10(3) M(-1), and does not change significantly in the presence of the externally added crown ether in DMSO (11 ± 4) × 10(3) M(-1). The rate constants for the superoxide binding (k(on) = (1.30 ± 0.01) × 10(5) M(-1) s(-1)) and release (k(off) = 11.6 ± 0.7 s(-1)) are not affected by the presence of the external crown ether in solution. The resulting iron(II)-superoxide adduct has been characterized (mass spectrometry, EPR, high-pressure UV/Vis spectroscopy) and upon controlled addition of a proton source it regenerates the starting iron(II) complex. Based on DFT calculations, the reaction product without neighboring positive charge has iron(II)-superoxo character in both high-spin side-on and low-spin end-on forms. The results are compared to those obtained for the analogous complex with covalently attached crown ether, and more general conclusions regarding the spin-state equilibrium of iron(II) porphyrins, their reaction with superoxide and the electronic structure of the product species are drawn.


Subject(s)
Coordination Complexes/chemistry , Dimethyl Sulfoxide/chemistry , Ferric Compounds/chemistry , Ferrous Compounds/chemistry , Porphyrins/chemistry , Superoxides/chemistry , Coordination Complexes/chemical synthesis , Electrochemistry , Electron Transport , Heme/chemistry , Kinetics , Ligands , Magnetic Resonance Spectroscopy , Models, Chemical , Molecular Structure , Protons , Solubility , Spectrometry, Mass, Electrospray Ionization , Thermodynamics
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