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1.
The interaction of indophenol blue (IPB) with proteins in aqueous solution has been studied by optical absorption and Rayleigh light scattering (RLS) spectroscopy. At pH 3.8, the weak RLS of IPB is enhanced by proteins. Based on this phenomenon, a novel method for the determination of proteins at nanogram levels using the RLS technique is developed. The method is simple, practical and sensitive. The linear range is 0.25–20.9µgmL–1 for BSA, and 0.25–17.6µgmL–1 for HSA. The detection limits (S/N=3) are 23ngmL–1 for BSA and 22ngmL–1 for HAS. The results for the determination of proteins in human serum samples are very close to those obtained by an established clinical method. There is very little interference from amino acids, metal ions or other coexisting compounds.  相似文献   

2.
A simple commercial graphite pencil electrode (GPE) was utilized for monitoring caffeine using the square-wave anodic stripping voltammetry (SWASV) method. This method was applied to determine the caffeine levels in several tea samples, which yielded a relative error of 1% in the concentrations. Caffeine was deposited at 0.0V (vs. Ag/AgCl), then reduced at +1.40V to strip it on the GPE. Optimal experimental conditions for the analysis were found to be as follows: pH value of 9 for the medium; deposition potential of 0.0V; deposition time of 120s; SW frequency of 25Hz; SW amplitude of 45mV, and step potential of 6mV. Given these optimum conditions, a linear range was observed within the concentration of 0500mgL–1. At caffeine concentrations of 50.0, 250.0, and 500.0mgL–1, the relative standard deviations in measured concentrations (n=12) were 0.19, 0.09, and 0.11%, respectively. The detection limit was found to be 9.2mgL–1, which is comparable with the result obtained using a carbon paste electrode, equivalent to 8.2mgL–1.  相似文献   

3.
A single-wall carbon nanotubes (SWNT) film coated glassy carbon electrode (GCE) was fabricated for the direct determination of 4-nitrophenol (4-NP). The electrochemical behaviors of 4-NP at the SWNT-film coated GCE were examined. In 0.1M phosphate buffer with a pH of 5.0, 4-NP yields a very sensitive and well-defined reduction peak at the SWNT-modified GCE. It is found that the SWNT film exhibits obvious electrocatalytic activity towards the reduction of 4-NP since it not only increases the reduction peak current but also lowers the reduction overpotential. Based on this, an electrochemical method was proposed for the direct determination of 4-NP. The reduction peak current varies linearly with the concentration of 4-NP ranging from 1×10–8 to 5×10–6M, and the detection limit is 2.5×10–9M after 3min of open-circuit accumulation. The relative standard deviation at 2×10–7M 4-NP was about 6% (n=10), suggesting excellent reproducibility. This new method was successfully employed to determine 4-NP in several lake water samples.  相似文献   

4.
Osmocene (and decamethylosmocene) is characterized by a lowest-energy ligand field triplet which occurs at max=372nm (374nm) in absorption and 567nm (572nm) in emission. This orange–yellow phosphorescence is rather intense at 77K but is also visible at r.t.  相似文献   

5.
A column solid-phase extraction (SPE) preconcentration method was developed for the determination of Cd, Co, Cu, Ni and Zn ions in natural water samples by flame atomic absorption spectrometry. The procedure is based on the retention of analytes in the form of 2-acetylmercaptophenyldiazoaminoazobenzene (AMPDAA) complexes on a short column of AMPDAA-XAD-4 resin from buffered sample solution and subsequent elution with hydrochloric acid plus sodium chloride. Important SPE parameters were optimized using model solutions. The loading half-time, t1/2, for Cd, Co, Cu and Zn was found to be less than 5min, and for Ni the value was 12min. The detection limit for Cd, Co, Cu, Ni and Zn was 0.028, 0.064, 0.042, 0.023 and 0.16µgL–1, respectively, and the quantification limit was 0.043, 0.11, 0.099, 0.044 and 0.29µgL–1, respectively. The AMPDAA-XAD-4 resin has good selectivity for Cd, Co, Cu, Ni and Zn over several electrolytes, especially over earth alkaline metals with tolerance limits of 0.05molL–1. The method was validated by analysing a standard reference material (GBW 08301), and it was found that the results agree with those quoted by the manufactures. The developed method was applied to the determination of trace metal ions in tap water and river water samples with satisfactory results.  相似文献   

6.
The growth of Au on the stable, high-index Si(5512) surface has been studied using scanning tunneling microscopy (STM). At very low coverages and moderate annealing temperatures (0.1ML, 400–500°C), Au appears to decorate the underlying Si rows and form an array of rows that maintains the underlying (5512) periodicity of 5.4nm. For higher annealing temperatures and coverages, however, Au causes faceting to a number of nearby planes. The two primary facets formed at lower (0.15ML) and higher (0.5–2ML) coverages are the (337) and (225) planes, which are tilted 0.7° down [towards (111)] and 1.1° up from (5512), respectively. Both orientations are in fact subunits of the (5512) unit cell, so their presence is not surprising. In addition to these facets, two types of sawtooth morphologies composed of planes oriented further from (5512) are found at very high annealing temperatures (800–900°C). These include (113)+(7715) planes at very low coverage (0.05ml) and (113)+(5511) planes at higher coverage (1ML), where (113) is tilted up by 5.3° and (7715) and (5511) are tilted down by 2.9° and 2.2°, respectively. Au adsorption on Si(5512) therefore results in the formation of five possible facet planes: (113), (225), (337), (5511), and (7715).  相似文献   

7.
CH2O conversion over sodium-manganese oxide and oxychloride catalysts in methane dehydrodimerization have been studied under unsteady-state conditions at high temperatures (600–750 °C). It has been established that formaldehyde conversions produce deep oxidation (CO, CO2), condensation (C2H4, C2H6) and methanation products through CH3O formation and decomposition.
(600–750°C) CH2O - . , (CO, CO2) (C2H4, C2H6), , CH3O.
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8.
The thermal dehydration and decomposition of copper(II) phthalate monohydrate was studied by isothermal and non-isothermal methods. The decomposition process consisted of three steps: two steps of dehydration and the third of decomposition. The kinetics of isothermal dehydration reactions follow (i) a unimolecular law up to the formation of copper(II) phthalate hemihydrate, and (ii) a phase boundary model giving anhydrous copper(II) phthalate, while the kinetics of isothermal decomposition reaction comply with the Erofeev-Avrami equation, [–ln(1–)]1/n =Kt+C. The energies of activation for the formation of the decomposition products were calculated. The decomposition products were characterized by elemental analysis, photomicrographic observations, infrared and reflectance spectra and X-ray powder diffraction data.
Zusammenfassung Die thermische Dehydratisierung und Zersetzung von Kupfer(II)Phthalat Monohydrat wurde durch isotherme und nichtisotherme Methoden untersucht. Der Zersetzungsvorgang bestand aus drei Stufen: zwei Stufen der Dehydratisierung und die dritte der Zersetzung. Die Kinetik der isothermen Dehydratisierungsreaktionen folgt (i) einem unimolekularen Gesetz bis zur Bildung von Kupfer(II)Phthalat Hemihydrat und (ii) einem Grenzflächen modell, das wasserfreies Kupfer(II)Phthalat ergibt, während die Kinetik der isothermen Zersetzungsreaktion der Erofeev-Avrami Gleichung, [–ln(1–)]1/n =Kt+C genügt. Die Aktivierungsenergien für die Bildung der Zersetzungsprodukte wurden berechnet. Die Zersetzungsprodukte wurden durch Elementaranalyse, mikrophotographische Beobachtungen, Infrarot- und Remissionsspektra sowie Röntgen-Pulverdiffraktionsdaten charakterisiert.

Résumé On a étudié, par des méthodes isothermes et non-isothermes, la déshydratation et la décomposition thermique du phtalate de cuivre(II) monohydraté. Le procèssus de décomposition consiste en trois étapes: deux étapes de déshydratation et la troisième de décomposition. La cinétique des réactions de déshydratation isotherme suit (i) une loi unimoléculaire jusqu'à la formation de phtalate de cuivre(II) hémihydraté, et (ii) un modèle de surfaces limites qui donne du phtalate de cuivre(II) anhydre, tandis que la cinétique de la réaction de décomposition isotherme satisfait l'équation d'Eroféev-Avrami: [–ln(1–)]1/n =Kt+C. On a calculé les énergies d'activation de la formation des produits de décomposition. On a caractérisé les produits de décomposition par analyse élementaire, par des observations micrographiques, des spectres infrarouges et d'émission ainsi que par des données de diffraction sur poudre des rayons X.

(II). : . (II) , (II). - : [-In(1-)]1/n=Kt+. . , , , .


One of the authors (C. M. K.) is grateful to the University of Jammu, Jammu, for the award of a Fellowship.  相似文献   

9.
A medium power radiofrequency capacitively coupled plasma (275W, 27.12MHz) with low argon consumption (0.5Lmin–1) was investigated to be used for the determination of aluminium in water samples pneumatically nebulised by atomic emission spectrometry. The plasma torch was operated in two geometric configurations, coaxial and coaxial-annular with single (SRTr.f.CCP) or double ring electrodes (DRTr.f.CCP), respectively. The optimum experimental parameters (observation height, Ar flow rate, distance between ring electrodes, matrix interference of Na+ and Ca2+ and anion nature) for Al 396.152nm emission were established. Under optimum operating conditions of the DRTr.f.CCP torch (6cm distance between annular electrodes), a detection limit of 70ngmL–1 aluminium was found. Both operating parameters and several figures of merit of the investigated plasmas were compared to those of microwave plasmas and inductively coupled plasma used in atomic emission spectrometry. The method was used to control the quality of drinking and industrial water. Samples were mineralised with 2mL of 1+1 HNO3 and 10mL of 1+1 HCl. In the range of 0.15–3.5mgL–1 Al3+ the relative standard deviation varied between 3.7 and 8.6% (n=3). For two certified drinking water samples containing 0.206 and 0.218mgL–1 Al3+ the recovery (n=5) was 97.6±6.8% and 98.6±7.3%, respectively.  相似文献   

10.
Summary. Steady state quenching studies of curcumin, 1,7-bis(4-hydroxy-3-methoxyphenyl)-1,6-heptadiene-3,5-dione, fluorescence by hydrogen peroxide were conducted in acetonitrile solution. A quenching rate constant, kq, of 1.05×1010M–1·s–1 was obtained with a short fluorescence lifetime of 347ps. The reaction rate constant, which is within the diffusion-limited regime, is activation-controlled. The rate constant of deactivation of the thermally excited curcumin was 1.2 orders of magnitude more nonradiative (2.67×109s–1) than radiative (2.16×108s–1). The reaction was exothermic with a G° of –1.97eV and solvent reorganization energy of 1.37eV. These values indicate that the electron transfer reaction is solvent-mediated with electron transfer rate constant, kET, of 2.16×1010s–1.  相似文献   

11.
A new approach, based on non-aqueous capillary electrophoresis separation and indirect photometric detection, was established for the determination of the transition metal ions Pb2+, Zn2+ and Cd2+. Under optimized conditions, the method produced baseline separation of these three metal ions. The linear range and detection limits were 1050µM, 1.9µM for Cd2+; 1050µM, 2.1µM for Zn2+; and 20100µM, 3.8µM for Pb2+, respectively.  相似文献   

12.
The kinetics of the oxidation of oxalic acid by cerium(IV) in sulfuric acid medium has been studied voltammetrically. The specific reaction rate is 132±4.0 M–1s–1 at 25.0 °C. The energy of activation is 62.6±3.0 kJ mol–1. The entropy of activation is –2.7 J mol–1K–1. The specific reaction rate is influenced by complexation and also by ionic strength (). The most likely mechanism has been suggested.
(IV) . 132±4,0 M–1c–1 25,0 °C. 62,6±3,0 ·M–1. –2,7 ·K–1M–1. , (). .
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13.
A simple and novel electrogenerated chemiluminescence (ECL) method for the determination of sulfite has been developed based on the energy transfer ECL process. It was found that a weak ECL signal of sulfite was electrochemically generated on a platinum electrode in neutral aqueous solution. The signal was strongly enhanced by rhodamine B as an energy receptor and further enhanced by the neutral surfactant Tween 80. In 0.10M phosphate buffer solution (pH=7.5) containing 2.0×10–6gmL–1 rhodamine B and 0.4% (v/v) Tween 80, the ECL response to the concentration of sulfite at a potential of 0.82V was linear over a range of 1.0×10–7gmL–1 to 8.0×10–6gmL–1, and the detection limit was 5×10–8gmL–1. The relative standard deviation (n=11, 1.0×10–6gmL–1) was 3.8%. The proposed method has been successfully applied to the determination of sulfite in pharmaceutical injections and white sugar samples.  相似文献   

14.
Ru/SiO2 catalysts prepared by reduction of supported RuCl3·xH2O are active in gas-phase hydroformylation of propylene at low pressure (ca. 0.3 MPa) of H2+CO+C3H6 mixtured and show unexpectedly high selectivity towards unbranched oxo-products. Data concerning the effect of electronic state and dispersity of Ru on their catalytic behavior have been obtained.
Ru/SiO2, RuCl3·xH2O, (0,3 ) - . .
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15.
A novel kinetic spectrophotometry for the determination of trace aluminum is described based on the catalytic activity of Al3+ on the redox reaction between methylene blue (MB) and hydrogen peroxide in acetate buffer (pH 3.8). The reaction is monitored spectrophotometrically by measuring the decrease in absorbance of the dye at the maximum absorption wavelength of 670nm. The variables that affected the reaction rate were fully investigated, and the optimum conditions were established. Aluminum can be determined in the range of 0–80ngmL–1 with a detection limit of 1.0ngmL–1. The relative standard deviation for 10 replicate determinations of 40ngmL–1 aluminum is 0.9%. The method was used to determine aluminum in tap water and biological samples and produced satisfactory results.Received December 18, 2002; accepted May 5, 2003 published online August 22, 2003  相似文献   

16.
Catalytic behavior of solid bases for mixed Tishchenko reaction in which an equimolar mixture of two different aldehydes is allowed to react was investigated employing the combinations of benzaldehyde and pivalaldehyde, pivalaldehyde and cyclopropanecarbaldehyde, and cyclopropanecarbaldehyde and benzaldehyde. The reactions were performed at 353K for 4h in vacuo without solvent using 5mmol of each aldehyde and 100mg of solid base catalyst. For all the combinations, the catalytic activity of alkaline earth oxides increased in the order of BaOMgO2O3, ZrO2, ZnO, -alumina, hydrotalcite, KF/alumina, and KOH/alumina produced either no amount or very small amounts of cross-esterification and self-esterification products. Quantum chemical calculations carried out at the PM3-MO level for the positive charges on the carbonyl carbon atoms of aldehydes and the structure parameters of the active species for the ester formations indicated that the selectivities to four Tishchenko dimers over MgO and CaO are determined primarily in the step of the nucleophilic addition of the active species (PhCH2O-, tBuCH2O-, and C3H5CH2O-) to the carbonyl carbon atoms of aldehydes. The reaction of the aldehyde having more positively charged and sterically less hindered carbonyl carbon atom with the active species having less hindered oxygen atom proceeds faster.We also attempted the application of solid base catalysts to the challenging Tishchenko reaction of furfural, and excellent results were obtained with CaO and SrO. For instance, when furfural (10mmol) was treated with SrO (100mg) without solvent at 353K for 6h in vacuo, almost quantitative conversion to the corresponding ester was accomplished. Furthermore, application of SrO to the Tishchenko reaction of 3-furaldehyde was carried out successfully. The catalytic systems were also successfully applicable to the intramolecular Tishchenko reaction (lactonization) of o-phthalaldehyde to phthalide. For example, treatment of o-phthalaldehyde (1mmol) with CaO (50mg) in benzene (1mL) solvent at 313K under N2 produced phthalide quantitatively in a short time of 15min. We finally refer to the perspective of application of solid base catalysts to Tishchenko reaction.  相似文献   

17.
Several new supported K2Cr2O7 reagents are used in the oxidation of secondary alcohols. The influence of the number of active sites and the nature of solid support on the yield is discussed. The influence of the structure of alcohol on the yield of ketone is analyzed.
K2Cr2O7 . . .
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18.
A microcolumn on-line preconcentration and separation system was developed for the flame atomic absorption spectrometric (FAAS) determination of trace levels of gold and palladium. The analytes were selectively adsorbed onto the microcolumn packed with 2-mercaptothiazole immobilized silica gel (MBTSG) in an acidity range of 0.1 to 6.0M HCl at a sampling flow rate of 4.0mLmin–1. The analytes adsorbed could be desorbed by a thiourea solution with a flow rate of 2.0mLmin–1. Most of the common coexisting metal ions at a concentration of 25.0mgmL–1 and anions at a concentration of 50.0mgmL–1 did not interfere with the preconcentration and determination of Au and Pd. The limits of detection (LOD), defined as three times the standard deviation of the blank (3), of Au and Pd are 10ngmL–1 and 26ngmL–1, respectively, with a preconcentration time of 60s. The relative standard deviation (RSD) is about 2.0% for 0.20µgmL–1 Au and 0.30µgmL–1 Pd. With a sample loading time of 30min, 6.7ngmL–1 Au and 10ngmL–1 Pd can be preconcentrated quantitatively. A geological sample, an anode slime and a secondary nickel alloy were successfully determined with the proposed method, and the results obtained showed good agreement with the certified values.Received December 23, 2002; accepted May 14, 2003 Published online August 8, 2003  相似文献   

19.
Thallium in natural water samples was determined by electrothermal atomic absorption spectrometry after 1000-fold enrichment by mini solid-phase extraction from a 100-mL sample solution. A Tl-pyrrolidine-1-carbodithioate complex formed in a sample solution of pH 1.6 was extracted on fine particles of a cellulose nitrate resin dispersed in the sample solution. The cellulose nitrate resin was then collected on a membrane filter (25mmø) by filtration under suction using a glass funnel with an effective filtration area of 0.64cm2. As a result, a circular thin layer of the resin phase with a diameter of 9mm was obtained. Then the resin phase was carved out by an acrylate resin puncher with a 10-mmø hole to put it into a sample cup containing 100µL of 10mM HNO3 containing 0.5mM NaCl. The resin phase was suspended in the solution by ultrasonication. 1000-fold enrichment was thus attained within 15min, and the suspension was delivered to electrothermal atomic absorption spectrometry. The linear calibration graph was obtained in the range of 0–4ng of Tl in 100mL of a sample solution. The detection limit obtained by 3 method was 0.19ng. The proposed method was applied to the determination of Tl in natural water samples. The results showed the concentration of Tl in seawater was 12.1±1.8pgmL–1 for the calibration graph method and 12.6±1.4pgmL–1 for the standard addition method. A snowmelt sample contained 20.7±1.0pgmL–1 of Tl.  相似文献   

20.
A new method of SS-RTP for the determination of trace silver has been established. This method is based on the fact that Ag+, when activated by ,-bipyridyl (bipy) in a media of HAc–NaAc (pH=4.9), can catalyze the reaction of Rhodamine B (RhoB) oxidized by K2S2O8, thus causing the Solid Substrate Room-Temperature Phosphorescence (SS-RTP) of RhoB to be quenched. The activating efficiency of bipy is 6.7 times higher than that of o-phenanthroline (phen). The reduction of the phosphorescence intensity (Ip) of RhoB is directly proportional to the concentration of Ag+ ions in the range of 1.6016.0agspot–1 (0.40µLspot–1). The regression equation of the working curve can be expressed as Ip=18.78+5.100mAg+ (agspot–1) (r=0.9994, n=6), the detection limit is 0.28agspot–1. This rapid, accurate and sensitive method has been successfully applied to the determination of trace silver in tea and human hair samples, and the results agree well with the Atomic Absorption Spectroscopy (AAS) method. The mechanism of the catalyzing reaction is also discussed.  相似文献   

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