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1.
Reactions of carbonate (CO 3 –· ) and bicarbonate (HCO 3 · ) radicals generated by photolysis of a carbonate or bicarbonate solution at pH 11.2 and 8.5, respectively, with Co(II) complexes of iminodiacetic acid (IDA) and ethylenediaminetetraacetic acid (EDTA) have been studied. The rate constants for the reactions were in the order of 106–107 dm3mol–1s–1. From the time-resolved spectroscopy of the products formed after reaction of CO –· or HCO 3 · , it is observed that CO 3 –· or HCO 3 · oxidize the metal center to its higher oxidation state.  相似文献   

2.
Aqueous solutions of nitrilotriacetic acid (NTA) were irradiated with gamma-rays. In deaerated acidic solutions G (IDA, iminodiacetic acid) was found to be 3.0 and in aerated solutions 2.7. Both H and OH radicals abstracted alpha hydrogen from the NZA molecule. The dehydrogenated radical disproportionated to NTA and IDA; however in presence of air, the radical added with O2 to give peroxy intermediate which was hydrolyzed to IDA and HO2. The rate constants, for the reaction of OH-radical with NTA at pH 2.0, 6.0 and 10.0 as determined by competition kinetic methods were 0.61·108, 5.5·108 and 42·108 dm3·mol–1·s–1, respectively. These indicated that the unprotonated form of NTA is more reactive than its protonated form. This has been attributed to the deactivation of alpha-hydrogen centers by protons through inductive effect.  相似文献   

3.
Reactions of carbonate radical (Co3 ) generated by photolysis or by radiolysis of a carbonate solution, with Cu(II) complexes of aminopolycarboxylic acids viz., Cu(II)ethylenediamine tetraacetate [CuIIEDTA]2− and Cu(II)-iminodiacetate [CuIIIDA] were studied at pH 10. 5 and ionic strength 0.2 mol·dm−3. Time-resolved spectroscopy and kinetics for the transients were studied using flash photolysis and stable products arising from the ligand degradation of the complex were ascertained by steady-state radiolysis experiments. From the kinetic data it is observed that CO3 , radical reacts initially with CuII-complex to form a transient intermediate having maximum absorption at 335 nm and 430 nm. From the subsequent reactions of this intermediate it was assigned to be CuIII. species. This Cu(III) species undergoes intermolecular electron transfer with the CuII-complex to give a radical intermediate which again slowly reacts with CuII-complex to give a long lived species containing Cu−C bond. This long lived species, however, slowly decomposed to give glyoxalic reaction between CuIII-complex and a suitable donor, the one electron reduction potential for [CuIIIEDTA]1−/[CuIIEDTA]2− and [CuIIIIDA]+1/CuIIIDA was determined.  相似文献   

4.
Carbonate radical shows moderate reactivity (k2=1.8·106 M–1 s–1) with nickelglycine complex. As an oxidizing free radical, it may attack the ligand to form Ni(II) coordinated glycine radical or oxidize the metal center to form a Ni(III) glycine transient. Continuous -irradiation of the complex-bicarbonate mixture yields glyoxalic acid (G=1.7) as the major product. The reaction involves an attack of the ligand and precludes the oxidation of metal center.  相似文献   

5.
On pulse radiolysis of N2O saturated aqueous solutions of atropine, an optical absorption band (max at 320 nm,e=2.81·103 dm3·mol–1·cm–1) was observed, which is assigned to the product of reaction of OH radicals with the solute. This absorption decayed following second order kinetics with a rate constant of 4.5·108 dm3·mol–1·s–1. The rate constant for the reaction of OH radicals with atropine as estimated by following the build-up kinetics is 2.7·109 dm3·mol–1·s–1. The H atoms also reacted with this compound to produce a transient absorption band behaving similarly to the one observed in the case of reaction with OH radicals. The transient species formed in both cases is assigned to a radical derived by H atom abstraction by H/OH radicals from the parent compound. This radical was unreactive towards 2-mercaptoethanol. e aq was found to react with atropine forming a transient band with max at 310 nm (=3.55·103 dm3·mol–1). Its decay was also second order with a rate constant of 1.64·109 dm3·mol–1·s–1. The bimolecular rate constant for the reaction of e aq with atropine as estimated from the decay of e aq absorption at 720 nm is 3.9·109 dm3·mol–1·s–1. Specific one-electron oxidizing and reducing agents (such as Cl 2 , Tl2+, SO 4 and (CH3)2COH, CO 2 , respectively) failed to oxidize or reduce this compound in aqoues solutions. The radical anion of atropine formed by its reaction with e aq was found to reduce thionine and methyl viologen with bimolecular rate constant of 3.8·109 and 3.2·109 dm3·mol–1·s–1, respectively.  相似文献   

6.
Phenoxyl type radicals were produced from tyrosine methyl ester (TME) using azide (N 3 . ) radicals. The rate constant of formation increased from 2·108 dm3·mol–1·s–1 at pH 7 to 4·109 dm3·mol–1·s–1 at pH 11, whereas that of the decay, 2k=(6±1)·108 dm3·mol–1·s–1, remained constant. The maximum yield of the radicals varied with pH and pulse dose consistently with the kinetic scheme, which involved a competition of the oxidation of TME by azide radicals with the natural decay of N 3 . .  相似文献   

7.
The fast reaction technique of pulse radiolysis in conjunction with UV- visible absorption detection was used to determine the rate of reactions of hydrated electron, hydrogen atom, hydroxyl radical and dichloride anion radical with tetraammineplatinum(II) perchlorate and with trans- dihydroxotetraammineplatinum(IV) perchlorate complexes. Generally these reactions proceed at near diffusion-controlled rates. The second-order rate constant for the reaction of e aq , H, OH and Cl 2 radical with the Pt(II) complex are (1.9±0.1)·1010 M–1·s–1, (2.8±0.3)·1010 M–1·s–1, (6.6±0.4)·109 M–1·s–1 and (9±1)·109 M–1·s–1, respectively. The rate constant for the reaction of e aq with the Pt(IV) complex is (4.9±0.3)·1010 M–1·s–1, however, H atom and OH radical reactions proceed at relatively slower rates.  相似文献   

8.
HNO3 transport across tri-n-butyl phosphate kerosene oil supported liquid membrane with or without uranyl ion transport has been studied. Parameters studied are the effect of TBP in the membrane, nitric acid in the feed solution and nitrate ion concentration in the feed solution. The flux of protons for 1 to 10 mol·dm–3 HNO3 solution is in the range of (0–25)·10–4 mol·m–2·s–1 and for the TBP concentration range of 0.359 to 3.59 mol·dm–3, the flux determined is (8.9 to 22)·10–4 mol·m–2·s–1. From the experimental data and using theoretical equations the complex under transport through the membrane appears to be 2TBP·HNO3 both in the presence and absence of uranyl ions. The diffusion coefficient for H+ ions through the membrane as a function of TBP concentration varies from (53 to 6)·10–12 m2·s–1, based on experimental flux and permeability data. The values of this coefficient supposing 2TBP·HNO3 as diffusing species, based on viscosity data and theoretical estimation varies from (82.50 to 3.30)·10–12 m2·s–1. The value of distribution coefficient varies in the reverse direction from 0.06 to 1.46 at the same TBP concentration.  相似文献   

9.
Transport study for Ti(IV) ions using di-2-ethylhexylphosphoric acid (D2EHPA) (carrier)-CCl4 (diluent) liquid supported membrane in microporous polypropylene hydrophobic film has been performed. The parameters studied are effects of carrier, H2SO4, stripping agent (NH4F) concentrations and temperature variation on flux and permeability coefficients of the metal ion. The optimum concentrations of transport found are 2.04 mol·dm–3 D2EHPA, 1.0 mol·dm–3 H2SO4 in the feed and 1 mol·dm–3 NH4F as stripping agent. The maximum flux and permeability coefficient determined are 1.32·10–5 mol·m–2·s–1 and 8.02·10–12 mol·m–2·s–1, respectively. The transport of this metal ion is increased with increase in temperature. The mechanism of transport appears to be based on coupled counter ion transport phenomenon.  相似文献   

10.
Membranes, based on tri-n-octylamine (TOA) xylene liquid, supported in hydrophobic microporous films have been used to study the transport of Pd(II) ions, after extraction into the membrane. Various parameters, such as the effect of hydrochloric acid concentration in the feed solution, TOA concentration in the membrane phase, effect of stripping agent like nitric acid concentration, and temperature on the flux of Pd(II) ions across the liquid membranes have been investigated. The optimum conditions of transport for these metal ions determined are, TOA concentration, 1.25 mol·dm–3, HCl concentration in the feed solution, 5 mol·dm–3, and concentration of nitric acid used as a stripping, agent 5 mol·dm–3. The maximum values of the flux and permeability determined under the optimum condition are 23·10–6 mol·m–2·s–1 and 2.40·103 m2·s–1 at 25°C. The results obtained have been used to elucidate the mechanism of palladium transport.  相似文献   

11.
A Sr ion transport study across D2EHPA-TBP kerosene oil based liquid membranes supported on microporous polypropylene film has been performed. The parameters studied were the effect of di(2-ethylhexyl)phosphoric acid (D2EHPA) and TBP concentration variation in the membrane liquid, HNO3 concentration variation in the stripping phase and citric acid concentration variation in the feed solution. The optimum conditions of transport are 0.3 mol/dm3 D2EHPA, 0.1 mol/dm3 TBP, 0.01 mol/dm3 citric acid in feed and 2 mol/dm3 HNO3 in the stripping phase. The mechanism of transport observed is counter-ion coupled transport. The coupling ions are protons. The maximum flux for Sr ion transport observed is 5.33·10–5 mol·m–2·s–1 and maximum permeability under optimum conditions observed is 8.08·10–11 m–2·s–1.  相似文献   

12.
Summary The interactions of more than forty metal chelate complexes, dithiocarbamates, dithiophosphates and acetylacetonates, with ozone are studied in homogeneous phase and the stoichiometry and the rate constants of the reactions estimated. Most powerful ozone deactivators are nickel(II) and copper(II) dithiocarbamate and dithiophosphate complexes interacting with 6.5 moles ozone per mole of the ligand with rate constant >06m · I–1 · s–1. The remote ligand substituents do not influence the reaction parameters. Other sulphur-containing complexes of iron(III), cobalt(II), cobalt(III), zinc(II), manganese(III), bismuth(III), antimony(III), arsenic(III), cadmium(II), platinum(II), palladium(II) and chromium(III) deactivate 3–4 moles ozone per mole ligand with rate constants of 102–104 m · I–1 · s–1. Acetylacetonate complexes of copper(II), nickel(II), cobalt(III), iron(III), chromium (III), and oxovanadium(II) deactivate 1–3 moles ozone per mole ligand with a rate constant of 10–104 m · I–1 · s–1. Using e.p.r. and electronic spectra, some intermediate products are detected and the mechanism of the reaction is discussed. The reported data are compared with other widely used antiozonants and the metal chelates are shown to have several advantages.  相似文献   

13.
The complexation equilibria between Ni(II) and Zn(II) metal ions with 3-(1-naphthyl)-2-mercaptopropenoic acid (H2NMP) were studied by glass electrode potentiometry, at 25 °C and 1.0 mol·dm–3 in NaClO4 as constant ionic medium in 50% (v/v) water-ethanol solutions. Formation constants for the complexes Ni(NMP), Ni(NMP) 2 2– , Zn(NMP) and Zn(NMP) 2 2– , refined by the MINIGLASS program, are reported.  相似文献   

14.
Sorption of europium on zirconium oxide has been studies as a function of shaking time, concentration and nature of electrolyte. The effect of initial europium concentration and the amount of adsorbent has been investigated in the range from 6.6·10–10 to 6.6·10–8 mol·dm–3 and between 10 to 200 mg of the oxide. Maximum sorption (>99.8%) from pH 10 buffer and low sorption (<3%) was observed from 0.01 mol·dm–3 nitric or perchloric acid solution. Citrate, sulfate, EDTA and carbonate reduced the sorption significantly. Under optimal conditions Ag(I), Cs(I), Tc(VII), Sb(V), Cu(II), Nd(III), Fe(III), and especially Nd and Fe showed low distribution coefficients. The data followed both Dubinin-Radushkevich and Langmuir-type isotherms. The mean free energy, of sorption was evaluated to be 10.1 kJ mol–1 and the sorption capacity was found to be 22.2 mmol g–1, using the Dubinin-Radushkevich isotherm.  相似文献   

15.
The -propionic acid methyl ester radical was produced in dissociative electron capture reaction of 2-chloropropionic acid methyl ester. The absorption maxima of the radical are at 310 and 300 nm in cyclohexane and water with extinction coefficients of 440±50 and 400±50 mol–1 dm3 cm–1. The second order decay rate parameter in water is (2.3±0.5)×109 mol–1 dm3 s–1. The peroxy radicals have the characteristics: max=265–270 nm, max=700–900 mol–1 dm3 and 2k=(7±2)·108 mol–1 dm3 s–1.  相似文献   

16.
Radiolytic reduction of merocyanine 540 (MC) in acidic (0.02 mol · dm–3 in H2SO4) and neutral methanol solution was studied by pulse radiolysis. The spectra centered around 400 and 700 nm of the MC reduced transients recorded in acidic methanol and in neutral solution were found to be quite similar but they disappeared with different rates suggesting that different radicals (MCH· and MC·) were responsible for these spectra. The rate constant of ·CH2OH reaction with MC was found to be 7·108 mol–1·dm3·s–1.  相似文献   

17.
The kinetics of reaction of indium(III)ion with EDTA (H4 edta) has been studied in aqueous acidic solutions using carrier-free111In and low concentrations of EDTA. The reaction takes place predominatly between indium(III) and H3 edta. The rate constant k3 is determined to be k3=(1.3±0.1)·105 dm3 mol–1 s–1 (25 °C).  相似文献   

18.
Adsorption of hafnium on manganese dioxide from nitric and perchloric acid solutions has been studied and optimized with respect to shaking time, concentration of acid, oxide and metal. Maximum adsorption has been noticed from 0.1 mol · dm–3 acid solutions in 20 minutes around 10–5 mol · dm–3 hafnium concentration. The adsorption of hafnium follows a Freundlich adsorption isotherm. Oxalate, thiosulfate, Na(I) and Al(III) from nitric acid and K(I) and Zn(II) from perchloric acid increase the adsorption, whereas all other anions and cations tested reduce the adsorption from both media Fe(III) and Sn(IV) significantly. Zn(II) and Co(II) show low adsorption affinity.  相似文献   

19.
Characteristics of the -induced chain reaction between sulfur dioxide and molecular oxygen in perchloric and sulfuric acid media in the presence of Ce(III) ions have been studied. The concentration effects of dissolved oxygen (0.2·10–3–9.4·10–3 mol/dm3, sulfur dioxide (0.3·10–1–2.0·10–1 mol/dm3 and Ce(III) (0.2·10–3–4.8·10–3 mol/dm3) and dose rate (0.26·1019–1.0·1019 eV/dm3·s) on the radiation — chemical yield of oxygen consumption G(–O2) and accumulation of sulfate G(HSO 4 ), have been investigated. The reaction proceeds with G(–O2) reaching 102–103 molecule/100eV in a catalytic regime. The reaction rate in perchloric acid medium is 3–4 times lower than that in the sulfuric acid medium and depends on the SO2, O2 and Ce(III) concentrations, the reaction order varying from 1.0 to 0 and/or in the reverse direction. The mechanism of the process involves chain propagation with 3 stages and 3 intermediates: SO3H, HSO5 and Ce(IV). The catalytic effect is caused by the interaction of HSO4 with Ce(IV) ions followed by their reduction when interacting with SO2, yielding SO3H radicals. Chain termination may be due to one or two of the three intermediates or due to all three particles, the kinetics depending on this. Kinetic equations describing the experimental data have been obtained.  相似文献   

20.
By means of flash photolysis and low-temperature spectrophotometry, the formation of a complex between a Cu(I) ion and a peroxy radical of the solvent has been detected in ethanol, isopropanol, and dimethylformamide. The peroxy radical is generated in a reaction of a solvent radical with a molecule of dissolved oxygen. The solvent radical appears as a result of photoreduction of chloride complexes of Cu(II). The radical complex has a band in the optical absorption spectrum with a maximum at 415–420 nm in ethanol and isopropanol. The rate of formation of this complex is determined mainly by the reaction of the radical of the matrix (R.) with complexes of bivalent copper. The rate constant of this process in isopropanol at room temperature is (2–3)·108 liters/ mole·sec. Disappearance of the radical complex Cu(I)...RO2 . takes place in a reaction with complexes Cu2+ solv and CuCl+ with a rate constant of 2.3·107 liters/mole·sec at room temperature.Translated from Teoreticheskaya in iÉksperimental'naya Khimiya, Vol. 22, No. 1, pp. 39–44, January–February, 1986.  相似文献   

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