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1.
Formation of oxidizing and reducing radicals has been studied by pulse radiolysis of [Fe(CN)6]4––BrO 3 –CN system in ethylene glycol — water solvent mixture. Oxidizing ·BrO2 and BrO radicals formed by electron scavenging with ·BrO 3 were identified and their reactions were investigated. The reaction of hydroxyl radicals with ethylene glycol leads to formation of reactive radicals with reducing properties and of compounds which reduce slowly in dark the ferricyanide formed in the reaction of ·BrO2 radical with ferrocyanide.  相似文献   

2.
We have carried out a quantum chemical analysis of the electronic structure of the nitroprusside ion [Fe(CN)5NO]2– and also the transition complex [Fe(CN)5NO· NH3]2– arising in the course of the reaction of reduction of coordinated nitrogen oxide with a nucleophile (ammonia). We consider the characteristics of the redistribution of electron density in the nitroprusside accompanying the nucleophilic attack. We discuss the role of the central iron ion and the CN-ligands during nucleophilic reduction.Translated from Teoreticheskaya i Éksperimental'naya Khimiya, Vol. 25, No. 4, pp. 432–439, July–August, 1989.  相似文献   

3.
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   

4.
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   

5.
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   

6.
Results are presented from quantum-chemical calculations for the iron complexes Fe(CN)5NO2–, Fe(CN)6 3–,Fe(CN)6 4–, FeCl4 , and FeCl6 3– in comparison with Mössbauer-spectroscopic data. The parameters of the Mössbauer spectra were calculated according to specially developed programs. The calibration constant of the isomer shift was determined to be –0.13 mm/sec.Translated from Teoreticheskaya i Éksperimental'naya Khimiya, Vol. 23, No. 4, pp. 506–508, July–August 1987.  相似文献   

7.
    
Summary In order to explain some anomalies combined with the electrode reduction of the NO group this reduction step was studied in detail in case of the free NO+ group, nitric oxide and nitroprusside ion. It was found that in all cases the electrode reaction of the NO group is preceded by a chemical reaction by means of which the observed anomalies can be explained. In case of NO+ and nitric oxide the chemical reaction is a dimerization of the NO group, in case of the nitroprusside ion a protonation of the [Fe(CN)5NO]3– complex. Possible reasons for these reactions are discussed.
Zusammenfassung Zur Aufklärung einiger Anomalien bei der Reduktion der NO-Gruppe wurde diese eingehend für den Fall der freien NO+-Gruppe, des Stickstoffoxids und des Nitroprussidions untersucht. Es wurde gefunden, daß in allen Fällen der Elektrodenreaktion der NO-Gruppe eine chemische Reaktion vorausgeht, durch die die beobachteten Anomalien erklärt werden können. Im Falle der NO+-Gruppe und des Stickstoffoxids ist dies eine Dimerisierung der NO-Gruppe, während im Falle des Nitroprussids eine Protonisierung des [Fe(CN)5NO]3-Ions stattfindet. Die möglichen Ursachen dieser Reaktionen werden diskutiert.


Dedicated to Prof. Dr. M. Von Stackelberg on his 70th birthday.

Presented at the IVth International Congress on Polarography, Prague, July 8, 1966.  相似文献   

8.
Summary The kinetics of the OsVIII-catalysed oxidation of glycols by alkaline hexacyanoferrate(III) ion exhibits zerothorder dependence in [Fe(CN) 6 3– ] and first-order dependence in [OsO4]. The order with respect to glycols is less than unity, whereas the rate dependence on [OH] is a combination of two rate constants; one independent of and the other first-order in [OH]. These observations are commensurate with a mechanism in which two complexes, [OsO4(H2O)G] and [OsO4(OH)G]2–, are formed either from [OsO4(H2O)(OH)] or [OsO4(OH)2]2– and the glycol GH, or by [OsO4(H2O)2] and [OsO4(H2O)(OH)] and the glycolate ion, G, which is in equilibrium with the glycol GH through the reaction between GH and OH. Hence there is an ambiguity about the true path for the formation of the two OsVIII-glycol complexes. A reversal in the reactivity order of glycols in the two rate-determining steps, despite the common attack of OH ion on the two species of OsVIII-complexes, indicates that the two complexes are structurally different because S changes from the negative (corresponding to k11) to positive (related to k2).  相似文献   

9.
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   

10.
The nitrosyl cyanide [Cu(L)Fe(CN)5NO] was prepared by the reaction of [Cu(L)]Cl2 [L = 3, 10-bis(2-hydroxymethyl)-1,3,5,8,10,12-hexaazacyclotetradecane] with Na2[Fe(CN)5NO]·2H2O in aqueous solution. Single-crystal analysis revealed that the title complex is the first structurally characterized dinuclear copper(II)–iron(II) complex based on the nitroprusside. Variable temperature magnetic susceptibility measurements (4.0–180.0 K) show the occurrence of very weak antiferromagnetic interactions between the copper(II) ions with zJ = –0.410 cm–1.  相似文献   

11.
The reduction of [Co(en)2Br2]+ by [Fe(CN)6]4– in H2O–MeOH and H2O–1,4-dioxane mixtures has been studied over a range of solvent compositions [5–30% (v/v)]. The reduction of [Co(en)2Br2]+ was monitored under second order conditions and was found to be rapid in the various solvent compositions investigated. The favoured mechanism is an outer-sphere electron-transfer process consisting of elementary steps, ion-pair formation (K IP), electron-transfer (k et) and successor dissociation. Therefore, the overall rate constant, k 2 = K IP k et[Co(en)2- Br2 +][Fe(CN)6 4–]. The rates increase as the proportion of organic cosolvent increases. The rates correlate with solvent properties, such as relative permittivity (r) and the Grunwald–Winstein parameter, Y GW, which are used to explain the non-specific interaction upon solvation of mixture of solvents on the incipient reactants and on the ion-pair. In addition, they are also subjected to multiparametric analysis employing Swain's solvent vectors A and B also with Kamlet–Taft's solvatochromic parameters , and *. The reduction rates show an excellent correlation with multiparametric equations and are susceptible to both specific and non-specific solvation effects. A quantitative estimation of the latter components has been attempted.  相似文献   

12.
A DRIFT study has shown that similar surface species are formed on Rh/Al2O3 during the selective catalytic reduction of NO2 or NO by C3H6, indicating that the reduction of both molecules proceeds via a similar pathway. A strong correlation was observed between the –NCO and –CN infrared band intensities and NO2 conversion.  相似文献   

13.
Summary The kinetics of the reaction between [MoO2(CN)4]4– and F have been studied in the pH range 8 to 11. The results indicated that the diprotonated form, [MoO(OH2)(CN)4]2–, is the only reactive species and that the aqua-ligand is substituted by the F ion according to the following reaction. The k1 and k–1 values are 8.8(2) M–1 s–1 and 0.6(1)s–1, respectively, at 15°C. A dissociative substitution process is proposed.  相似文献   

14.
Ion-association complexes of Naphazoline HCl (I), Tolazoline HCl (II) and Xylometazoline HCl (III) with [Co(NO2)6]3– and [Fe(CN)6]3– were precipitated and the excess of the unreacted iron or cobalt comples was determined. A new method using atomic emission and atomic absorption spectrometry for the determination of the above drags in pure solutions and in pharmaceutical preparations is given. The drugs have been determined in the ranges 0.98–14.76, 0.78–11.80 and 1.12–16.80 g/ml solutions of I, II and III. respectively, using [Co(NO2)6]3–], with mean relative standard deviations of 0.4–1.5% and 1.92%–19.68, 1.52–5.68 and 2.24–22.4 g/ml solutions of I, II and III, respectively using [Fe(CN)6]3– with mean relative standard deviations of 0.6–1.6%. The recovery values of 98.12–101.26% indicate high precision and accuracy.  相似文献   

15.
The kinetics of ruthenium(III) catalyzed oxidation of formaldehyde and acetaldehyde by alkaline hexacyanoferrate(III) has been studied spectrophotometrically. The rate of oxidation of formaldehyde is directly proportional to [Fe(CN) 3– 6 ] while that of acetaldehyde is proportional tok[Fe(CN) 3– 6 ]/{k +k[Fe(CN) 3– 6 ]}, wherek, k andk are rate constants. The order of reaction in acetylaldehyde is unity while that in formaldehyde falls from 1 to 0. The rate of reaction is proportional to [Ru(III)] T in each case. A suitable mechanism is proposed and discussed.
Die Kinetik der Ru(III)-katalysierten Oxidation von Formaldehyd und Acetaldehyd mittels alkalischem Hexacyanoferrat(III)
Zusammenfassung Die Untersuchung der Kinetik erfolgte spektrophotometrisch. Die Geschwindigkeitskonstante der Oxidation von Formaldehyd ist direkt proportional zu [Fe(CN) 3– 6 ], währenddessen die entsprechende Konstante für Acetaldehyd proportional zuk[Fe(CN) 3– 6 ]/{k +k[Fe(CN) 3– 6 ]} ist, wobeik,k undk Geschwindigkeitskonstanten sind. Die Reaktionsordnung für Acetaldehyd ist eine erste, die für Formaldehyd fällt von erster bis zu nullter Ordnung. Die Geschwindigkeitskonstante ist in jedem Fall proportional zu [Ru(III)] T . Es wird ein passender Mechanismus vorgeschlagen.
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16.
A kinetic study of the reduction of Co(NH3)5(DMSO)3+ (DMSO=dimethylsulfoxide) by Fe(CN)64− has been carried out in several water–cosolvent mixtures at 298.2 K. The cosolvents used were ethylene glycol, acetonitrile, methanol and glucose. The free energies of activation for this thermal electron-transfer reaction have been calculated from a combination of spectroscopic and electrochemical data and compared with those obtained from the kinetic study. Quantitative agreement is found between both series of data. This shows the possibility of estimating activation free energies for electron transfer reactions from these (static) measurements.  相似文献   

17.
Reaction of K3[Fe(CN)6] with [Cu(tn)2](ClO4)2 (tn=1,3-diaminopropane) leads to a novel mixed cyano and tn bridged three-dimensional (3D) bimetallic assembly (1), in which each [Fe(CN)6]4− anion connects six copper(II) cations via six CN groups, whereas each copper(II) cation is linked to three [Fe(CN)6]4− ions and two other copper(II) ions through Cu–NC–Fe and Cu–tn–Cu linkages, respectively. Magnetic studies reveal weak antiferromagnetic interactions between the nearest CuII (S=1/2) ions through the diamagnetic [Fe(CN)6]4− anion.  相似文献   

18.
Cu2+ is reduced in the presence of nitroprusside to form two Cu(I) reduced nitroprusside species at about +0.050 V (pH 7.6). These species are reduced further at about −0.60 V. The two species are formed by an EC mechanism, and the species are believed to be [CuIFe(CN)4NO], which predominates in acidic solution, and [CuIFe(CN)5NO]2−, which predominates in alkaline solution. These conclusions are supported by cyclic voltammetric and bulk electrolysis/coulometric experiments.  相似文献   

19.
Summary Cyanide ion reacts with [Fe(Par)2]2–,i.e. Par=4-(2-pyridylazo)resorcinol to form a 113 mixed cyanocomplex. The reaction has been studied spectrophotometrically at 720 nm max, pH=11.5±0.02, and I=0.1 M (NaClO4) at 25±0.1°C. The order with respect to cyanide varies from one to two at high and low cyanide concentrations respectively. The rate constants for respective reactions are k1=(6.1±0.3)×10–2 M–1 s–1, k2=(12.6±1.0) M–2 s–1. The reverse reaction does not occur at a measurable rate even in presence of a large excess of Par. These observations suggest that [Fe(Par)2]2– forms a mixed [FePar(CN)3]3– complex in presence of an excess of cyanide ion. The activation parameters for the reaction have been calculated and used to support a three step mechanism consistent with these results. The effect of ionic strength tends further support to the mechanism.  相似文献   

20.
Summary HOCl reacts with Fe(CN) 6 4– to generate an intermediate, presumably FeCl(CN) 6 3– , which exhibits a weak absorption around 282 nm and decays simultaneously with the formation of Fe(CN) 6 3– . When decreasing the HOCl/Fe(CN) 6 4– concentration ratio fromR>1 toR<1, a drastic change in the kinetics of the oxidation is observed. Depending onR, the intermediate obviously oxidizes either Fe(CN) 6 4– or HOCl. AtR1, a further intermediate appears which also precedes the oxidation and absorbs strongly around 360 nm. The intermediates detected may represent reactive high oxidation states of iron (Fe(IV) and Fe(VI)). HOCl induced oxidation of Fe(CN) 6 4– is activated catalytically by Br, I, and N 3 , obviously due to generation of stronger oxidants (HOBr, HOI, and ClN3), but oxidation is efficiently inhibited by CN and NCS.
Mechanismen der Oxidation von K4Fe(CN)6 durch Hypochlorsäure und katalytische Aktivierung durch Azid, Bromid und Iodid
Zusammenfassung HOCl reagiert mit Fe(CN) 6 4– unter Bildung eines Intermediats, vermutlich FeCl(CN) 6 3– , das bei 282 nm eine schwache Absorption aufweist und parallel zum Erscheinen von Fe(CN) 6 3– verschwindet. Man beobachtet eine drastische Änderung in der Oxidationskinetik, wenn das HOCl/Fe(CN) 6 4– Konzentrationsverhältnis vonR>1 zuR<1 verändert wird. In Abhängigkeit vonR wird offenbar entweder Fe(CN) 6 4– oder HOCl durch das Intermediat oxidiert. FürR1 erscheint ein weiteres Intermediat mit einer starken Absorptionsbande bei 360 nm, das ebenfalls der Oxidation vorangeht. Bei den beobachteten Intermediaten handelt es sich vermutlich um reaktive höhere Oxidationsstufen des Eisens (Fe(IV) und Fe(VI)). Die HOCl-induzierte Oxidation von Fe(CN) 6 4– wird einerseits durch Br, I und N 3 katalytish aktiviert (offenbar infolge der Bildung stärkerer Oxidantien wie HOBr, HOI und ClN3), andererseits durch CN und NCS effektiv inhibiert.
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