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1.
Studies on the catalytic reduction of nitrite on carbon electrodes modified with Co(II) tetra-2,3-pyridinoporphyrazine (CoTppa, 1), N,N′,N′′,N′′′-tetramethyltetra-2,3-pyridinoporphyrazine ([CoTm-2,3-tppa]4+, 2) and Co(II) N,N′,N′′,N′′′-tetramethyltetra-3,4-pyridinoporphyrazine ([CoTm-3,4-tppa]4+, 3) are reported. There is a close correspondence between the proximity of the methyl groups to the porphyrazine ring and the catalytic activity of the porphyrazine complexes. Bulk electrolysis gave ammonia and hydroxylamine as some of the products. The catalytic activity of the cationic complex, 3, towards the detection of low concentrations of nitrite (<10−9 M) in water containing sodium sulfate, was compared with the activities of the anionic cobalt(II) tetrasulfophthalocyanine ([CoTSPc]4−, 4) and the mixed [CoIITm-3,4-tppa]4+·[CoTSPc]4− (5) complexes. Complex 5 showed the best catalytic activity of the three in that large currents were obtained for very low concentrations of nitrite.  相似文献   

2.
The spectral features of the squarylium near-infrared (NIR) dye NN525 in different solutions and its complexation with several metal ions were investigated. The absorbance maximum of the dye is λ=663 nm in methanol. This value matches the output of a commercially available laser diode (650 nm), thus making use of such a source practical for excitation. The emission wavelength of the dye in methanol is λem=670 nm. The addition of either Fe(III) ion or Co(II) ion resulted in fluorescence quenching of the dye. The Stern–Volmer quenching constant, KSV, was calculated from the Stern–Volmer plot to be KSV=2.70×107 M−1 for Co(II) ion. The KSV value for Fe(III) ion could not be established due to the non-linearity of the Stern–Volmer plot and the modified Stern–Volmer plot for this ion. The detection limit is 6.24×10−8 M for Fe(III) ion and 1.55×10−5 M for Co(III) ion. The molar ratio of the metal to the dye was established to be 1:1 for both metal ions. The stability constant, KS, of the metal–dye complex was calculated to be 3.14×106 M−1 for the Fe–dye complex and 2.64×105 M−1 for the Co–dye complex.  相似文献   

3.
The new salt, tetra-n-butylammonium bis(benzene-1,2-dithiolato(2−)-κ2S,S′)platinate(III), [NBu4][Pt(C6H4S2)2] (1), has been synthesized in ethanol/water, and fully characterized by single crystal X-ray structure determination. The central platinum in the complex ion [Pt(bdt)2] is tetracoordinated by the S atoms of the bdt2− ligands (bdt2− is benzene-1,2-dithiolate) in a square-planar geometry. The well-resolved frozen solution EPR spectrum exhibits rhombic symmetry. The room temperature effective magnetic moment (μeff = 1.80 Bohr magneton) is in line with this spectrum and strongly supports the Pt(III) oxidation state in 1. This observation is in excellent agreement with previous results reported on closely related Ni(III), Pd(III) and Pt(III) species.  相似文献   

4.
Starting from Ba2(1,3-pddadp)·8H2O (1,3-pddadp=1,3-propanediamine-N,N′-diacetate-N,N′-di-3-propionate ion) and CoSO4, a new hexadentate [CoII(1,3-pddadp)]2− complex has been prepared. The trans(O6) geometry of this complex was confirmed by comparison of its i.r. and u.v.–vis. spectra with those of [CoII(1,3-pdta)]2− (1,3-pdta is the 1,3-propanediaminetetraacetate ion) and trans(O6)-[CoIII(1,3-pddadp)] complexes of known X-ray crystal structure. Magnetic and electrolytic conductivity properties of these complexes have also been discussed.  相似文献   

5.
The complex [Ru(II)(dcbpyH2)(bdmpp)NCS](PF6) (1) (where dcbpyH2 is 2,2′-bipyridine-4,4′-dicarboxylic acid, bdmpp is 2,6-bis(3,5-dimethyl-N-pyrazoyl)pyridine,) is synthesized and characterized extensively by 1H NMR and 13C NMR 1D and 2D, mass spectroscopy, cyclic voltammetry, electronic absorption spectroscopy and IR. The half-wave potential of the Ru(II)/Ru(III) redox couple was measured at E1/2=+0.795 V versus Ag/AgCl in CH3CN. The complex presents three intense metal-to-ligand charge transfer (MLCT) (dM→πL*) absorption bands centered at 383 (=21 300 M−1 cm−1), 432 (=22 400 M−1 cm−1) and 475 nm (=23 400 M−1 cm−1), respectively. The absorbance is extremely strong between 400 and 500 nm and even at 620 nm, the extinction coefficient is still high (=3768 M−1 cm−1). The strong π-acceptor property of the trans-isothiocyanate ligand compared with the Cl ligand is probably the cause of the blue-shift observed in complex 1. These properties make the complex potentially promising for the photosensitization process. The incorporation of TiO2 photoelectrodes derivatized with this complex into a solar cell using a composite polymer/inorganic oxide solid-state electrolyte confirmed its sensitizing ability. Incident monochromatic photon-to-current conversion efficiency (IPCE) values of about 30% and overall energy conversion efficiency (η) of 1.7% were obtained.  相似文献   

6.
An indirect catalytic method for the separate microdetermination of oxalate, citrate, and fluoride ions is described. The method is based on the inhibition action of oxalate, citrate, and fluoride ions on the catalytic oxidation reaction of 2,4-diaminophenol-hydrogen peroxide by iron(III).Procedures for the determination of 1.76 × 10−2 to 17.6 × 10−2 μg/ml for oxalate ion, 3.78 × 10−2 to 30.24 × 10−2 μg/ml for citrate ion, and 0.38 to 4.18 μg/ml for fluoride ion are given.Quantities of 1.76 × 10−2 to 17.6 × 10−2 μg/ml for oxalate ion, 3.78 × 10−2 to 30.24 × 10−2 μg/ml for citrate ion, and 0.38 to 4.18 μg/ml for fluoride ion could be determinated with a relative error of about 1–3.5% for oxalate and citrate ions and 1–2% for fluoride ion.  相似文献   

7.
A simple method has been described for the Spectrophotometric determination of cobalt(II) with 2-(3′-sulfobenzoyl)pyridine benzoylhydrazone (SBPBH). In aqueous solution, cobalt(II) reacts with SBPBH to form a yellow complex, which is not destroyed even by the addition of 3.8 M perchloric acid. The absorption maximum of the complex in 1.5 M perchloric acid medium was found to be 400 nm; the molar absorptivity was 2.17 × 104 liters mol−1 cm−1. The proposed method is fairly selective and has been applied to the determination of cobalt in standard alloy steel samples.  相似文献   

8.
Solid complexes of lighter lanthanide nitrates with N,N′-dinaphthyl-N,N′-diphenyl-3,6-dioxaoctanediamide (DDD), Ln(NO3)3(DDD) (Ln = La---Nd, Sm) have been prepared in non-aqueous media. These complexes have been characterized by elemental analysis, conductivity measurements, IR spectra, electronic spectra and TG-DTA techniques. In all the complexes, DDD and NO3 are coordinated to the lanthanide ions as tetradentate and bidentate ligands, respectively. The differences in the IR and electronic spectra between these complexes and lanthanide nitrate complexes with N,N,N′,N′-tetraphenyl-3,6-dioxaoctanediamide (TDD) are discussed.  相似文献   

9.
Conductance measurements are reported for dilute aqueous solutions at 25°C of potassium hexacyanoferrate(III) and of sodium, potassium, rubidium, and cesium octacyanotungstate(V). The results are interpreted in terms of ion-pair formation, and association constants for the formation of these ion pairs are calculated. For the ion pairs MW(CN) 8 2– , the results are: M=Na, 12±8; K, 23±7; Rb, 37±10; and Cs, 51±4M –1, at 25°C and zero ionic strength.  相似文献   

10.
Ag+-assisted dechlorination of blue cis-trans-cis Ru(R-aai-R′)2Cl2 followed by the reaction with chloranilic acid (H2CA) in the presence of Et3N, gives a neutral mononuclear violet complex [Ru(R-aai-R′)2(CA)]. [R-aai-R′=p-R-C6H4—N=N—C3H2—NN, abbreviated as an N,N′ chelator where N(imidazole) and N(azo) represent N and N′, respectively; R = H (a), OMe (b), NO2 (c) and R′= Me (4), Et(5), Bz(6)]. All the complexes exhibit strong intense MLCT transitions in the visible region and weak broad bands at higher wavelength (>700 nm). Visible transitions (580–595 nm) show a negative solvatochromic effect. The cyclic voltammograms show two quasireversible to irreversible couples positive to SCE and are due to CA/CA2− (1.2–1.35 V) and Ru(III)/Ru(II) (1.6–1.8 V) redox processes. Three couples, negative to SCE, are assigned to CA2−/CA3− (−0.2 to −0.3 V), and azo reductions (−0.5 to −0.7, −0.8 to −0.9 V) of the chelated R-aai-R′.  相似文献   

11.
Synthesis and characterization of a novel double-tailed cationic surfactant   总被引:2,自引:0,他引:2  
A novel double-tailed cationic surfactant, N,N′-didodecylacetamidinium bicarbonate, was prepared by reacting dimethylacetamide dimethyl acetal with dodecylamine, followed by reacting with dry ice. MSD, FTIR, 1H NMR, 13C NMR, 2D-NMR were used to confirm its structure. The surfactant reduced the surface tension of pure water to 24.7 mN m−1 and its critical micelle concentration was 8.75 × 10−5 M. Formation of vesicle was also observed.  相似文献   

12.
Four ligands 1,10-phenanthroline-5,6-bis(N,N-dibenzyl-1′-oxopropylamide) (La) 1,10-phenanthroline-5,6-bis(N-methyl-N-benzyl-1′-oxopropylamide) (Lb) 1,10-phenanthroline-5,6-bis(N-benzyl-1′-oxopropylamide) (Lc) and 1,10-phenanthroline-5,6-bis(N,N-diethyl-1′-oxopropylamide) (Ld), and their lanthanide(III) (La and Eu) complexes were synthesized. The complexes were characterized by elemental analysis, IR, fluorescence spectroscopy and conductivity. The lanthanide atoms are coordinated by O atoms from C=O, Ar–O –C and N atoms from phen With the difference of the ligands, the fluorescent intensities of the Eu(III) complexes vary regularly in the THF solution. Some factors that influence the fluorescent intensity were discussed.  相似文献   

13.
On the basis of the changes in absorption spectra of azo dyes on the addition of an organic onium ion, spectrophotometric methods for the determination of organic onium salts and anionic surfactants were developed, and applied to flow injection method. Propyl orange (PO) was used for the determination of organic onium ions. Pairs of PO and Zeph+ (tetradecyldimethyl-benzylammonium ion) or PO and nC18TMA+ (n-octadecyltrimethylammonium ion) were used for the determination of anionic surfactants. The determination range of organic onium ions were (0–3) × 10–5 M by a batch method and were (0–2) × 10–5 M by a flow injection method. The determination ranges of anionic surfactants were (0–2) × 10–5 M by the batch method, and were (0–5) × 10–5 M by the flow injection method, and the detection limit corresponding toS/N = 3 was 3 × 10–7 M by the flow injection method. By the proposed flow injection method, anionic surfactants in water samples were determined.  相似文献   

14.
The infrared (IR) spectrum of tetramethylammonium fluoride suggests that it contains the strongest C–HF hydrogen bonds yet observed. Ab initio 3-21G(*) calculations were used to examine potential solid state arrangements of cation about anion. The favored state is one in which four cations surround each F in a D2d arrangement and four F surround each cation. Each F acts as acceptor of four hydrogen bonds of −10.8 kcal mol−1, one from each cation. This arrangement, similar to that of tetramethylammon chloride, is consonant with the IR spectrum of the cation in solid tetramethylammonium fluoride. In the preferred form of the monomeric gas phase ion-pair F lies against one triangular face of the Td cation with three CHF hydrogen bonds of −11.5 kcal mol−1 each. Constraint of F in the gas phase ion-pair to interaction with a single cation hydrogen results in a tightly bound molecular complex between HF and trimethylammonium methylide with an interaction energy of −27 kcal mol−1; however, this structure is not seen elsewhere and apparently does not play a role in the solid salt.  相似文献   

15.
A novel polymeric sorbent for selective extraction of U(VI) and Th(IV) from highly acidic wastes was prepared by modifying Merrifield chloromethylated resin with N,N,N′,N′-tetrahexylmalonamide. The functionalized resin was characterized by FT-IR spectroscopy, CPMAS NMR spectroscopy, CHN elemental analysis and thermo-gravimetric analysis. Various physiochemical parameters responsible for quantitative extraction of metal ions were studied by static and dynamic methods. The resin exhibited very good extractability over a wide range of acidity (0.01–10 M) with a faster exchange rate (saturation possible within 20 min) and high sorption capacities (0.645 and 0.558 mmol g−1) for U(VI) and Th(IV), respectively. Quantitative metal desorption was achieved by using 0.5 M (NH4)2CO3 for both analytes. The significant feature of the resin is the possibility of sequential separation and the ability to elute only U(VI) with water, thus offering the possibility of sequential separation of U(VI) and Th(IV). Interference studies with commonly encountered metal ions, rare earth ions and electrolytes were conducted. Enrichment factors of 400 and 350 with a limit of quantification of 20 ng mL−1 and 50 ng mL−1 were achieved for the two analytes. All the analytical data were within 3.8% RSD, reflecting the reproducibility and reliability of the method.  相似文献   

16.
3-3′-Dimethoxybenzidine (o-dianisidine, ODA) is oxidised by Br2, among other oxidants, generating a compound that absorbs at 450 nm, while the non-oxidised reagent absorbs in the UV region. This reaction has been used previously as the basis of a continuous-flow method for the determination of bromate in ozonised water, with a detection limit lower than the maximum permitted for drinking water (10 μg L−1). The only interference observed in the method was that due to the chlorite ion (ClO2), which generated the same ODA bromation product. Thus, in systems in which O3 is employed as a disinfectant and disinfection is later enhanced with ClO and ClO2, there exists the possibility of finding BrO3 and ClO2, oxoanions generated as subproducts. The kinetic behaviour of the reaction between bromate and chlorite with bromine in acidic medium is different, allowing the proposal of a continuous-flow method for the simultaneous or sequential determination of both subproducts in water purification systems. None of the other subproducts interfered in the reaction. Kinetic differentiation was achieved by combining the temperature of the reaction and the length of the coils, after which it was possible to determine both analytes sequentially within a concentration range of 6–160 μg L−1.  相似文献   

17.
Four short- and long-alkyl-multiamine ligands L1–L4 have been synthesized and characterized. The catalytic efficiency of complex CuL1 and functional metallomicelles CuL2–CuL4 were comparatively investigated for the hydrolysis of bis(p-nitrophenyl) phosphate (BNPP) in buffered solution at 30 °C. The ternary kinetic model for metallomicellar catalysis was suggested to analyze the experimental data. The kinetic and thermodynamic parameters kN, KT and pKa were obtained. The results indicated that the complexes with 1:1 ratio of ligands L2–L4 to copper(II) ion were the kinetic active catalysts, and the deprotonized Cu(II) complex formed by activated water molecule was the real active species for BNPP catalytic hydrolysis. The real rate constant of the reaction catalyzed by CuL1–CuL4 was 4.00 × 10−6, 7.44 × 10−5, 1.42 × 10−4 and 4.10 × 10−4 s−1, respectively. The effects of ligand and microenvironment on the hydrolytic reaction of BNPP have been discussed in detail.  相似文献   

18.
Methods of 19F NMR and impedance spectroscopy are used to investigate the internal mobility of fluoride (ammonium) ions and electrophysical characteristics of complex trivalent antimony fluorides MSb4F13, MSb3F10, MSb2F7, M2Sb3F11, M3Sb4F15, and MSbF4 (M is an alkali cation, ammonium, thallium). The ion motion types in the cationic and anionic sublattices of the fluorides are determined at 150–500 K. The polymorphous transformations in the fluorides are usually phase transitions to a superionic state and their high ionic (superionic) conductivity (σ ≥ 10−4 to 10−2 S cm−1 at 400 K) is due to the diffusion motion of ions of fluoride, ammonium, and possibly sodium, potassium, and thallium. The high polarizability of thallium ions favors the development of high mobility of fluoride ions in the fluorides.__________Translated from Elektrokhimiya, Vol. 41, No. 5, 2005, pp. 560–572.Original Russian Text Copyright © 2005 by Kavun, Uvarov, Slobodyuk, Brovkina, Zemnukhova, Sergienko.  相似文献   

19.
Semiautomatic methods are described for the catalytic titrimetric determination of microamounts of silver and mercury(II) using a chloramine-T-selective electrode as monitor. The methods are based on the inhibitory effect of Ag(I) and Hg(II) on the iodide-catalyzed chloramine-T-arsenite and chloramine-T-H2O2 reactions. Microamounts of silver in the range 0.2–200 μg (1 × 10−7−1 × 10−4 M) and of mercury(II) in the range 0.1–200 μg (2.5 × 10−8−5 × 10−5 M) were determined using the chloramine-T-As(III) indicator reaction. Mercury(II) in the range 4–2000 μg (1 × 10−6−5 × 10−4 M) was also determined using the chloramine-T-H2O2 indicator reaction. The accuracy and precision were in the range 0.1–1%.  相似文献   

20.
The preparation and electrochemical characterization of a carbon paste electrode modified with copper(II) hexacyanoferrate(III) (CuHCF) as well as its behavior as electrocatalyst toward the oxidation of N-acetylcysteine were investigated. The electrochemical behavior of the modified electrode and the electrooxidation of N-acetylcysteine were explored using sweep linear voltammetry. The best voltammetric response was observed for a paste composition of 20% (w/w) copper(II) hexacyanoferrate(III) complex, acetate buffer solution at pH of 6.0 as the electrolyte and scan rate of 10 mV s− 1. A linear voltammetric response for N-acetylcysteine was obtained in the concentration range from 1.2 × 10− 4 to 8.3 × 10− 4 mol L− 1, with a detection limit of 6.3 × 10− 5 mol L− 1. The proposed electrode is useful for the quality control and routine analysis of N-acetylcysteine in pharmaceutical formulations.  相似文献   

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