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1.
Summary The kinetics of the reaction of [Cu(TPT)(H2O)3]2+ and [Ni(TPT)(H2O)3]2+ with H2O have been followed and it has been shown that the formation of covalent hydrates is important in the understanding of these systems. The [Co(TPT)(OH)3] compound and its Ni analogue are attacked by HO initially to form pseudo-base species and in, the case of Ni , the ligand then hydrolyses to yield a compound related to the carboximate formed when HO reacts with [Cu(TPT)(OH)3]. In this reaction too, the formation of a pseudo-base, involving attack of HO at the triazine ring in the ligand is significant.Part XXI, ref. 2.  相似文献   

2.
Summary [Ru(TPT)2]2+ undergoes nucleophilic attack at the ligand in aqueous solutions of HO. The reaction is reversible and the equilibrium can be followed spectrophotometrically. In acid solution, the free nitrogen atoms of the uncoordinated pyridine residues are protonated to form a new species. Two reactions of [Fe(TPT)2]2+ take place in H2O over extended periods. The first is the well-known dissociative process, but the second appears to involve reaction at the ligand. The results are used to reinterpret some of the chemistry of complexes of TPT and related ligands.Part XIX: J. A. Arce Sagüés, R. D. Gillard, R. J. Lancashire and P. A. Williams,J. Chem. Soc. Dalton Trans., in press.  相似文献   

3.
Summary The reactions of [Fe(bipym)3]2+ and [Ru(bipym)3]2+ with hydroxide ion in aqueous solution have been followed. The [Ru(bipym)3]2+ species undergoes nucleophilic attack at the ligand to yield [Ru(bipym)2(pyrimidine)(OH)]+ and [HCO2] ion, involving cleavage of one pyrimidyl ring. Intermediates can be observed in the reaction of [Fe(bipym)3]2+ with HO, N3 and SCN. The kinetics of the first reaction have been followed and the results are compared with those known for the reactions of [Fe(bipy)3]2+, [Fe(phen)3]2+ and similar compounds.Part XXIII: P. A. Williams,Transition Met. Chem., 78/84.  相似文献   

4.
Summary The reactions of [Ni(TPT)2]2+ and [Co(TPT)2]2+ with aqueous hydroxide ion involve the formation of pseudo-base species prior to the dissociation of a ligand molecule. The [M(TPT)(H2O)3]2+ or [M(TPT)(OH)3] species thus formed react further with hydroxide ion to yield compounds previously described. The kinetics of pseudo-base formation have been followed in each case and the results are compared with a number of other reactions of analogous compounds with hydroxide ion and with water.Part XXII, ref. 3.  相似文献   

5.
Summary The reactions of [Fe(bipyz)3]2+ (bipyz = 2,2-bipyrazine) and [Fe(box)3]2+ [box = 2,2-bis-(5,6-dihydro-4-H-1,3-oxazine] with H2O and HO in aqueous solution have been followed. The [Fe(bipyz)3]2+ ion is attacked at the ligand with both nucleophiles and the ligand is cleaved. A similar reaction between HO and [Fe(box)3]2+ is observed. Detailed kinetics for all reactions are reported.phen 1,10-phenanthroline - bipy 2,2-bipyridyl - bipym 2,2-bipyrimidine Part XXV: R. D. Gillard, W. S. Walters and P. A. Williams,J. Chem. Soc. Dalton Trans., in press.  相似文献   

6.
Summary Kinetics of formation of [PdCl4]2– from [Pd(ox)2]2– and [Pd(mal)2]2– has been studies in aqueous acid media in the presence of an excess of chloride ion by stopped-flow spectrophotometry. Both the complexes undergo the transformation in two well separated consecutive steps. In 0.02–0.05 M acid with 0.2 M Cl, Pd(AA)2– dissociates leading to the formation of [Pd(AA)Cl2]2– (where AA =ox2– or mal2–), which in 0.1–0.6 M acid and 1 M Cl forms [PdCl4]2– in a relatively slow step. For both steps kabs=k0+k2[H+][Cl]. Activation parameters corresponding to k0 and k2 have been determined. Results indicate that [Pd(mal)2]2– is much more labile to substitution than [Pd(ox)2]2– and for both the lability is far greater than that of [Pd(bigH)2]2+ and [Pt(ox)2]2– reported earlier.  相似文献   

7.
Summary The kinetics and mechanism of the reaction between [Fe2L(OH)2]2– and cyanide ion (L = TTHA, triethylenetetraaminehexaacetate) have been studied spectrophotometrically atpH=11.0±0.1,I=0.1 M(NaClO4) and T = 25±0.1 °C. The overall reaction consists of three distinct, observable stages. The first stage involves the dissociation of the binuclear complex into a mononuclear complex [FeL(OH)]4– which then reacts with cyanide to form [Fe(CN)5OH]3–. The species [Fe(CN)5OH]3– reacts further with an excess of cyanide and forms [Fe(CN)6]3– in the second stage of reaction. The last stage involves the reduction of [Fe(CN)6]3– formed in the second stage by the TTHA6– released in the first stage of reaction. The formation of [Fe(CN)5OH]3– in the first stage is firstorder in [Fe2L(OH)2]2– and third-order in cyanide over a large range of cyanide concentrations but becomes zero-order in cyanide at [CN] < 4×10–2M.These observations enable us to suggest the presence of a slow step in which [Fe2L(OH)2]2– dissociates into [FeL(OH)]4– and [FeOH]2+ at low cyanide concentrations and a cyanide assisted rapid dissociation of [Fe2L(OH)2]2– to [FeL(OH)(CN)]5– at higher cyanide concentrations. The species [FeL(OH)(CN)]5– reacts further with an excess of cyanide to produce [Fe(CN)5OH]3– finally.The reverse reaction between [Fe(CN)5OH]3– and TTHA6– follows first-order dependence in each of [Fe(CN)5OH]3– and TTHA6– and inverse first-order dependence on cyanide concentration. A six-step mechanism has been proposed for the first stage of reaction in which the fifth has been identified as the rate-determining step.  相似文献   

8.
Summary The kinetics and mechanism of exchange of HPDTA in [Fe2HPDTA(OH)2] with cyanide ion (HPDTA=2-hydroxytrimethylenediaminetetraacetic acid) was investigated spectrophotometrically by monitoring the peak at 395 nm ( max of [Fe(CN)5OH]3– at pH=11.0±0.02,I=0.25m (NaClO4) at ±0.1°C).Three distinct observable stages were identified; the first is the formation of [Fe(CN)5OH]3–, the second the formation of [Fe(CN)6]3– from it and the third the reduction of [Fe(CN)6]3– to [Fe(CN)6]4– by HPDTA4– released in the first stage.The first stage follows first-order kinetics in [Fe2HPDTA(OH)2] and second-order in [CN] over a wide range of [CN], but becomes zero order at [CN]<5×10–2 m. We suggest a cyanide-independent dissociation of [Fe2HPDTA)(OH)2] into [FeHPDTA(OH)] and [Fe(OH)]2+ at low cyanide concentrations and a cyanide-assisted rapid dissociation of [Fe2HPDTA(OH)2] to [FeHPDTA(OH)(CN)]3– and [Fe(OH)]2+ at higher cyanide concentrations. The excess of cyanide reacts further with [FeHPDTA(OH)(CN)]3– finally to form [Fe(CN)5OH]3–.The reverse reaction between [Fe(CN)5OH]3– and HPDTA4– is first-order in [Fe(CN)5OH]3– and HPDTA4–, and exhibits inverse first-order dependence on cyanide concentration.A six-step mechanism is proposed for the first stage of reaction, with the fifth step as rate determining.  相似文献   

9.
Summary [Fe(3,3'-bipyridazine)3]2+ has a negligible rate of dissociation in water at pH 7, and in 0.05 mol dm–3 HO at ionic strength 1.00 mol dm–3 (NaNO3) at 298.2 K, the second-order rate constant involving HO is only 3.3 x 10–5 dm3 mol–1 s–1. Examination of kinetic and other data and results for it wide variety oftris-diimine complexes of FeII related compounds, indicates that dissociation takes placevia attack at the ligand. The significance of the various possible intermediates is assessed and it is evident that a previously postulated intramolecular transfer of HO from the ligand to the metal atom, with associated metal-nitrogen bond fission, is important in the reaction. A general scheme for dissociation of these kinds of compounds is set out.Part XXX: R. D. Gillard, R. P. Houghton and J. N. Tucker,J. Chem. Soc., Dalton Trans., submitted for publication.Present address: Department of Chemistry. University of Nottingham, University Park, Nottingham NG7 2RD U.K.  相似文献   

10.
Summary The kinetics and mechanism of the system: [FeL(OH)]2–n + 5 CN [Fe(CN)5(OH)]3– + Ln–, where L=DTPA or HEDTA, have been investigated at pH= 10.5±0.2, I=0.25 M and t=25±0.1 C.As in the reaction of [FeEDTA(OH)]2–, the formation of [Fe(CN)5(OH)]3– through the formation of mixed ligand complex intermediates of the type [FeL(OH)(CN)x]2–n–x, is proposed. The reactions were found to consist of three observable stages. The first involves the formation of [Fe(CN)5(OH)]3–, the second is the conversion of [Fe(CN)5(OH)]3– into [Fe(CN)6]3– and the third is the reduction of [Fe(CN)6]3– to [Fe(CN)6]4– by oxidation of Ln– The first reaction exhibits a variable order dependence on the concentration of cyanide, ranging from one at high cyanide concentration to three at low concentration. The transition between [FeL(OH)]2–n and [Fe(CN)5(OH)]3– is kinetically controlled by the presence of four cyanide ions around the central iron atom in the rate determining step. The second reaction shows first order dependence on the concentration of [Fe(CN)5(OH)]3– as well as on cyanide, while the third reaction follows overall second order kinetics; first order each in [Fe(CN)6]3– and Ln–, released in the reaction. The reaction rate is highly dependent on hydroxide ion concentration.The reverse reaction between [Fe(CN)5(OH)]3– and Ln– showed an inverse first order dependence on cyanide concentration along with first order dependence each on [Fe(CN)5– (OH)]3– and Ln–. A five step mechanism is proposed for the first stage of the above two systems.  相似文献   

11.
Zusammenfassung Auf Grund spektrophotometrischer und konduktometrischer Messungen wurden folgende Koordinationsformen des Eisen(III)-ions mit Azid-, Rhodanid-, Cyanid- und Fluoridionen in Dimethylsulfoxid festgestellt: [Fe(N3)4], [Fe(SCN)6]3–, [Fe(CN)2]+, Fe(CN)3, [Fe(CN)4], [FeF2]+, [FeF4].
By means of spectrophotometric and conductometric measurements the following coordination forms of iron(III) with azide-, thiocyanate-, cyanide- and fluoride ions were found in dimethyl sulfoxide: [Fe(N3)4], [Fe(SCN)6]3–, [Fe(CN)2]+, Fe(CN)3, [Fe(CN)4], [FeF2]+, [FeF4].


Mit 4 Abbildungen  相似文献   

12.
Summary The kinetics and mechanism of the system [FeHIDA-(OH)2]+5CN[Fe(CN)5OH+HIDA2–+OH (HIDA=N-(2-hydroxyethyl) (iminodiacetate) at pH=9.5±0.02, I=0.1 M and at 25±0.1°C have been studied spectrophotometrically at 395 nm ( max of [Fe(CN)5OH]3–]. The reaction has three distinguishable stages; the first is formation of [Fe(CN)5OH]3–, the second is conversion of [Fe(CN)5OH]3– into [Fe(CN)6]3–, and last is the reduction of [Fe(CN)6]3– to [Fe(CN)6]4– by the HIDA2– released in the first stage. The first stage shows variable-order dependence on cyanide concentration, unity at high cyanide concentration and zero at low cyanide concentration. The second stage exhibits first-order dependence on the concentration of [Fe(CN)5OH]3– as well as on cyanide. The reverse reaction between [Fe(CN)5OH]3– and HIDA2– is first-order in each of these species and inverse first-order in cyanide. On the basis of forward and reverse rate studies, a five-step mechanism has been proposed for the first stage. The first step involves a slow loss of one OH, by a cyanide-independent path.  相似文献   

13.
The kinetics of RuIII catalyzed reduction of hexacyanoferrate(III) [Fe(CN)6]3–, by atenolol in alkaline medium at constant ionic strength (0.80 mol dm–3) has been studied spectrophotometrically, using a rapid kinetic accessory. The reaction between atenolol and [Fe(CN)6]3– in alkaline medium exhibits 1:2 stoichiometry [atenolol:Fe(CN)6 3–]. The reaction showed first order kinetics in [Fe(CN)6]3– concentration and apparent less than unit order dependence, each in atenolol and alkali concentrations. Effect of added products, ionic strength and dielectric constant of the reaction medium have been investigated. A retarding effect was observed by one of the products i.e., hexacyanoferrate(II). The main products were identified by i.r., n.m.r., fluorimetric and mass spectral studies. A mechanism involving the formation of a complex between the atenolol and the hydroxylated species of ruthenium(III) has been proposed. The active species of oxidant and catalyst were [Fe(CN)6]3–and [Ru (H2O)5OH]2+, respectively. The reaction constants involved in the mechanism were evaluated. The activation parameters were computed with respect to the slow step of the mechanism, and discussed.  相似文献   

14.
Summary The kinetics of acid hydrolysis ofcis-[CoCl(btzH)(en)2]2+ andcis-[CoCl(btzMe)(en)2]2+ complexes (where btzH = benzotriazole, btzMe =N-methylbenzotriazole and en = ethylenediamine) have been investigated in HClO4 at ionic strength 1 = 0.25 mol dm–3 in the 30–40° range. In the 1.0 x 10–1 to 1.0 X 10–3 mol dm–3 acid strength range, the rate of aquation of the [CoCl(btzH)(en)2]2+ cation follows the relationship:-d ln[complex]/dt = k1 + k2KNH[H+]–1, where k1 and k2 are aquation rate constants of the acid independent and acid dependent steps respectively, and KNH is the acid dissociation constant of the coordinated benzotriazole.cis-[CoCl(btzMe)-(en)2]2+ undergoes acid independent hydrolysis presumably due to the absence of a labile N-H proton. The base hydrolysis could be followed for thecis-[CoCl(btzMe)(en)2]2+ complex only by measuring hydrolysis rates at 0°.  相似文献   

15.
Pd(II) complexes with glutamic acid of the composition K[Pd(HGlu)Cl2] (I) and [Pd(HGlu)2] (II) were synthesized and studied by IR and electronic absorption spectroscopy methods. Pd2+–H2O–Cl and Pd2+–H2O–Cl–H2Glu systems were analyzed by pH-metric titration. The most essential Pd(II) complex forms were established by mathematical modeling and their formation constants were calculated. The electronic absorption spectra of complexes I and II were measured in aqueous and physiological solutions. Complex I was found to be biologically active and to exhibit antimetastatic properties.  相似文献   

16.
Zusammenfassung Die neutralen Halogenide und Pseudohalogenide von Kobalt(II) sind in Nitromethan kaum dissoziiert. Bei Zusatz entsprechender Anionen zu Kobalt(II)-perchloratlösungen werden in Nitromethan folgende Koordinationsformen leicht gebildet: CoCl2, CoCl3 , CoCl4 2–, CoBr2, CoBr3 , CoBr4 2–, CoJ2, CoJ3 , CoJ4 2–, Co[N3]2, [Co(N3)4]2–, Co[NCS]2, [Co(NCS)4]2–, Co[CN]2 [Co(CN)4]2– und [Co(CN)5]3–.
The neutral halides and pseudohalides of cobalt(II) are nearly undissociated in nitromethane. On addition of the appropriate anion to a solution of cobalt(II)-perchlorate in nitromethane the following coordination forms are easily produced: CoCl2, CoCl3 , CoCl4 2–, CoBr2, CoBr3 , CoBr4 2–, CoJ2, CoJ3 , CoJ4 2–, Co[N3]2, [Co(N3)4]2–, Co[NCS]2, [Co(NCS)4]2–, Co[CN]2, [Co(CN)4]2– and [Co(CN)5]3–.


Mit 10 Abbildungen  相似文献   

17.
Zusammenfassung Aus Kobalt(II)perchlorat und Piperidiniumhydrogendifluorid entstehen in nichtwäßrigen Lösungsmitteln (L) Komplexe, welche HF2-Einheiten als Liganden enthalten, nämlich [Co(HF2)L 5]+, [Co(HF2)2 L 4], [Co(HF2)3 L 3], [Co(HF2)4 L 2]2– und [Co(HF2)6]4–.
Hydrogendifluorocobaltates(II)
Cobalt(II)perchlorate and piperidinium hydrogendifluoride in non-aqueous solvents (L) yield complex compounds containing an HF2-group as ligand, e.g. [Co(HF2)L 5]+, [Co(HF2)2 L 4], [Co(HF2)3 L 3], [Co(HF2)4 L 2]2– and [Co(HF2)6]4–.


Mit 3 Abbildungen  相似文献   

18.
Two 2-terephthalate (tp) bridged complexes, [Cu2(tp)(pren)4](ClO4)2 (pren = 1,3-diaminopropane) (1) and [Ni2(tp)(pren)4(Him)2](ClO4)2 (Him = imidazole) (2), have been synthesized and characterized by X-ray single-crystal structural analysis. In the discrete dinuclear [Cu2(tp)(pren)4]2+ cation of complex (1), each CuII atom has a square-pyramidal geometry, being coordinated by four nitrogen atoms (avg. 2.031 Å) from two pren ligands at the basal plane and one oxygen atom [2.259(3) Å] from a bis-monodentate tp group at the axial position. In the discrete dinuclear [Ni2(tp)(pren)4(Him)2]2+ cation of complex (2), each NiII center is coordinated by five nitrogen atoms [Ni—N 2.069(3)–2.109(2) Å] from one Him group and two pren groups, and completed by one oxygen atom [Ni—O 2.138(3) Å] from a bis-monodentate tp group to furnish a distorted octahedron. Magnetic susceptibility studies show that the pair of metal atoms, although being separated by >11.5 Å, exhibit weak intramolecular antiferromagnetic interactions in complexes (1) (g = 2.07 and J = –3.4 cm–1) and (2) (g = 2.10 and J = –0.7 cm–1). The electrochemical behaviors of the complexes have also been studied by cyclic voltammogram processes.  相似文献   

19.
Two cyano-bridged assemblies, [FeIII(salpn)]2[FeII(CN)5NO] (1) and [FeIII (salpn)]2[NiII(CN)4] (2) [salpn = N, N-1,2-propylenebis(salicylideneiminato)dianion], have been prepared and structurally and magnetically characterized. In each complex, [Fe(CN)5NO]2– or [Ni(CN)4]2– coordinates with four [Fe(salpn)]+ cations using four co-planar CN ligands, whereas each [Fe(salpn)]+ links two [Fe(CN)5NO]2– or [Ni(CN)4]2– ions in the trans form, which results in a two-dimensional (2D) network consisting of pillow-like octanuclear [—MII—CN—FeIII—NC—]4 units (M = Fe or Ni). In complex (1), the NO group of [Fe(CN)5NO]2– remains monodentate and the bond angle of FeII—N—O is 180.0°. The variable temperature magnetic susceptibilities, measured in the 5–300 K range, show weak intralayer antiferromagnetic interactions in both complexes with the intramolecular iron(III)iron(III) exchange integrals of –0.017 cm–1 for (1) and –0.020 cm–1 for (2), respectively.  相似文献   

20.
OsVIII-catalysed oxidation of m-hydroxybenzaldehyde by alkaline Fe(CN)6 3– has been studied in the 0.01–0.05 M [OH] range. Higher [OH] concentrations were not possible as the substrate turned yellow at [OH] > 0.05 M. The very low solubility of the substrate in H2O restricted the kinetic study to [OH] < 0.01 M. A mechanism, consistent with the results is proposed.  相似文献   

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