首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 27 毫秒
1.
The polyamines, octyl-[2-(2-octylamino-ethylamino)-ethyl]-amine (L1) and octyl-{2-[2-(2-octylamino-ethylamino)-ethylamino]-ethyl}-amine (L2), have been used as anion ionophores in PVC-based membrane ion-selective electrodes. Different electrodes were prepared containing L1, or L2, and o-nitrophenyl octyl ether (NPOE) or bis(2-ethylhexyl)sebacate (DOS) as plasticizers. The response of the electrodes was tested in two different buffers, HEPES-KOH (pH 7) and MES-KOH (pH 5.6). Electrodes containing L1 and L2 with NPOE (E1 and E2, respectively) showed a Nernstian response for thiocyanate with a good response time. The detection limit, linear range and slope for electrode E1 were 3.8 × 10−6 mol dm−3, 1 × 10−5 to 1 × 10−1 mol dm−3 and −57.2 mV decade−1 at pH 5.6 and 4.47 × 10−6 mol dm−3, 1.95 × 10−5 to 1 × 10−1 mol dm−3 and −58.1 mV decade−1 at pH 7.0. For electrode E2 the detection limit, linear range and slope found were 2.63 × 10−6 mol dm−3, 7.94 × 10−6 to 1 × 10−1 mol dm−3 and −58.5 mV decade−1 at pH 5.6 and 1.23 × 10−5 mol dm−3, 7.95 × 10−5 to 1 × 10−1 mol dm−3 and −46.0 mV decade−1 at pH 7. In contrast, electrodes containing DOS as plasticizers gave only response at pH 5.6 (detection limit, linear range and slope at pH 5.6 were 3.16 × 10−5 mol dm−3, 1 × 10−4 to 1 × 10−1 mol dm−3 and −52.6 mV decade−1). Selectivity coefficients for different anions with respect to thiocyanate were calculated. The electrode E2 at pH 5.6 was also used for the determination of SCN by potentiometric titrations with Ag+ ions with good results. The electrode E2 was also used to determine concentrations of thiocyanate in biological samples.  相似文献   

2.
Polyelectrolytes were incorporated into porous reinforcing materials to study the properties of ionomers in confined spaces and to determine the effect of the porous material on the behaviour of the membranes. Nafion® was imbibed into porous polypropylene (Celgard®), ultra-high-molecular weight polyethylene (Daramic®), and polytetrafluoroethylene (PTFE) films. Through the use of reinforcing materials, it is possible to prepare membranes that are thinner, but stronger than pure ionomer membranes. Thin reinforced membranes have advantages such as lower areal resistance (as low as 0.14 Ω cm2 for 57 μm CG3501 + Nafion® compared to 0.34 Ω cm2 for 89 μm cast Nafion®) and lower dimensional changes due to swelling (as low as a 4% change in length and width for WDM + Nafion® compared to 13% for cast Nafion®). Using reinforcing materials results in a reduction in important membrane properties compared to bulk Nafion®, such as proton conductivity (as low as 0.016 S cm−1 for CG3401 + Nafion® compared to 0.076 S cm−1 for cast Nafion®), effective proton mobility (as low as 3.2 × 10−4 cm2 V−1 s−1 CG3401 + Nafion® compared to 7.6 × 10−4 cm2 V−1 s−1 for cast Nafion®), and water vapour permeance (as low as 0.036 g h−1 Pa−1 m−2 for WDM + Nafion® compared to 0.056 g h−1 Pa−1 m−2 for cast Nafion®). By normalizing the membrane properties with respect to ionomer content, it was possible to examine the properties of the Nafion® inside the pores of the membranes. The proton conductivity (as low as 0.032 S cm−1 for CG3401 + Nafion®), effective proton mobility (as low as 3.6 × 10−4 cm2 V−1 s−1 for CG3401 + Nafion®), and water vapour permeability (as low as 2.7 × 10−6 g h−1 Pa−1 m−1 for PTFE MP 0.1 + Nafion®) of the ionomer in the membrane are also diminished compared to bulk Nafion® due to decreased connectivity of the ionomer and a restriction in macromolecular motions caused by the pore walls. A series of porous materials with increasing pore were also examined. As the pore size of the PTFE MP materials increased from 0.1 μm to 10 μm, the proton conductivity (0.022 S cm−1 to 0.041 S cm−1), effective proton mobility ((4.1 to 5.6) × 10−4 cm2 V−1 s−1), and water vapour permeability ((2.4 to 4.3) × 10−6 g h−1 Pa−1 m−1) of the reinforced membranes improved with increasing pore size and the properties of the ionomer inside the membranes approached the value of bulk Nafion®.  相似文献   

3.
A novel method of first derivative synchronous fluorescence was developed for the rapid simultaneous analysis of trace 1-hydroxypyrene (1-OHP), 1-naphthol (1-NAP), 2-naphthol (2-NAP), 9-hydroxyphenanthrene (9-OHPe) and 2-hydroxyfluorene (2-OHFlu) in human urine. Only one single scan was needed for quantitative determination of five compounds simultaneously when Δλ = 10 nm was chosen. In the optimal experimental conditions, there was a linear relationship between the fluorescence intensity and the concentration of 1-OHP, 1-NAP, 2-NAP, 9-OHPe and 2-OHFlu in the range of 1.75 × 10−9 to 4.50 × 10−6 mol L−1, 3.64 × 10−8 to 2.20 × 10−4 mol L−1, 8.18 × 10−9 to 1.20 × 10−4 mol L−1, 3.26 × 10−9 to 8.50 × 10−5 mol L−1 and 4.88 × 10−9 to 5.50 × 10−6 mol L−1, respectively. The limits of detection (LOD) were found to be 5.25 × 10−10 mol L−1 for 1-OHP, 1.10 × 10−8 mol L−1 for 1-NAP, 2.46 × 10−9 mol L−1 for 2-NAP, 9.77 × 10−10 mol L−1 for 9-OHPe and 1.46 × 10−9 mol L−1 for 2-OHFlu. The proposed method is reliable, selective and sensitive, and has been used successfully in the determination of traces of 1-OHP, 1-NAP, 2-NAP, 9-OHPe and 2-OHFlu in human urine samples, whose results were in good agreement with those gained by the HPLC method.  相似文献   

4.
The heat capacity of LuPO4 was measured in the temperature range 6.51-318.03 K. Smoothed experimental values of the heat capacity were used to calculate the entropy, enthalpy and Gibbs free energy from 0 to 320 K. Under standard conditions these thermodynamic values are: (298.15 K) = 100.0 ± 0.1 J K−1 mol−1, S0(298.15 K) = 99.74 ± 0.32 J K−1 mol−1, H0(298.15 K) − H0(0) = 16.43 ± 0.02 kJ mol−1, −[G0(298.15 K) − H0(0)]/T = 44.62 ± 0.33 J K−1 mol−1. The standard Gibbs free energy of formation of LuPO4 from elements ΔfG0(298.15 K) = −1835.4 ± 4.2 kJ mol−1 was calculated based on obtained and literature data.  相似文献   

5.
Wang L  Yang P  Li Y  Zhu C 《Talanta》2006,70(1):219-224
A novel flow-injection chemiluminescence (FI-CL) method for the determination of estrogens is proposed, based upon its enhancing effect on the CL reaction of luminol with hydrogen peroxide catalyzed by tetrasulfonated manganese phthalocyanine (MnTSPc) in alkaline solution. Under the selected experimental conditions, a linear relationship was obtained between the CL intensity and the concentration of estrone in the range of 1.0 × 10−7 to 1.0 × 10−6 mol/l, estradiol in the range of 9.0 × 10−8 to 1.0 × 10−6 mol/l and estriol in the range of 3.0 × 10−7 to 2.0 × 10−6 mol/l, respectively. The detection limits were 5.1 × 10−8 mol/l for estrone, 7.2 × 10−9 mol/l for estradiol and 6.5 × 10−8 mol/l for estriol with a relative standard deviation of 2.8% for 5.0 × 10−7 mol/l estrone, 2.4% for 1.0 × 10−7 mol/l estradiol, and 3.1% for 7.0 × 10−7 mol/l estriol (n = 11). This method has been applied to the determination of estrogen in pharmaceutical injections and tap water with satisfactory results.  相似文献   

6.
Haiping Zhou  Jinghe Yang 《Talanta》2009,78(3):809-813
It is found that Al(III) can further enhance the intensity of resonance light scattering (RLS) of the silver nanoparticles (AgNPs) and nucleic acids system. Based on this, a novel method of determination of nucleic acids is proposed in this paper. Under optimum conditions, there are linear relationships between the enhancing extent of RLS and the concentration of nucleic acids in the range of 1.0 × 10−9-1.0 × 10−7 g mL−1, 1.0 × 10−7-2.0 × 10−6 g mL−1 for fish sperm DNA (fsDNA), 1.0 × 10−9-7.0 × 10−8 g mL−1 for calf thymus DNA (ctDNA) and 1.0 × 10−9-1.0 × 10−7 g mL−1 for yeast RNA (yRNA). The detection limits (S/N = 3) of fsDNA, ctDNA and yRNA are 4.1 × 10−10 g mL−1, 4.0 × 10−10 g mL−1 and 4.5 × 10−10 g mL−1, respectively. The studies indicate that the RLS enhancement effect should be ascribed to the formation of AgNPs-Al(III)-DNA aggregations through electrostatic attraction and adsorption bridging action of Al(III). And the sensitivity and stability of the AgNPs-fsDNA system could be enhanced by Al(III).  相似文献   

7.
Ding SN  Xu JJ  Zhang WJ  Chen HY 《Talanta》2006,70(3):572-577
Tris(2,2′-bipyridyl)ruthenium(II) (Ru(bpy)32+)-Zirconia-Nafion composite modified glassy carbon disk electrode as a solid-state electrochemiluminescence (ECL) detector is successfully applied to an electrophoretic microchip system with a wall-jet configuration. Pharmaceuticals such as tramadol, lidocaine and ofloxacin were selected to characterize the performance of this microchip capillary electrophoresis (CE)-ECL detection system. Voltammetric and ECL behaviors of immobilized Ru(bpy)32+ were investigated in lidocaine system. Influences of the separation electric field to cyclic voltammograms (CVs) of the immobilized Ru(bpy)32+ were also investigated. Tramadol, lidocaine and ofloxacin can be baseline separated without any additives. The detection limits (S/N = 3) were 2.5 × 10−5 mol L−1 for tramadol, 5.0 × 10−6 mol L−1 for lidocaine, 1.0 × 10−5 mol L−1 for ofloxacin under the sample injection of picoliters, and the linear ranges were from 5.0 × 10−5 to 2.5 × 10−3 mol L−1 for tramadol, 1.0 × 10−5 to 1.0 × 10−3 mol L−1 for lidocaine, and 1.0 × 10−5 to 2.5 × 10−3 mol L−1 for ofloxacin, respectively.  相似文献   

8.
A microwave-assisted persulfate oxidation method followed by ion chromatographic determination of nitrate was developed for total nitrogen determination in atmospheric wet and dry deposition samples. Various operating parameters such as oxidation reagent concentrations, microwave power, and extraction time were optimized to maximize the conversion of total nitrogen to nitrate for subsequent chemical analysis. Under optimized conditions, 0.012 M K2S2O8 and 0.024 M NaOH were found to be necessary for complete digestion of wet and dry deposition samples at 400 W for 7 min using microwave. The optimized extraction method was then validated by testing different forms of organic nitrogen loaded to pre-baked filter substrates and NIST SRM 1648 (urban particulate matter), and satisfactory results were obtained. In the case of wet deposition samples, standard addition experiments were performed. The suitability of the method for real-world application was assessed by analyzing a number of wet and dry deposition samples collected in Singapore during the period of March-April 2007. The organic nitrogen content was 15% (wet) and 30% (dry) of the total nitrogen. During the study period, the estimated wet fluxes for nitrate (NO3), ammonium (NH4+), organic nitrogen (ON), and total nitrogen (TN) were 16.1 ± 6.5 kg ha−1 year−1, 11.5 ± 5.7 kg ha−1 year−1, 3.8 ± 1.5 kg ha−1 year−1and 31.5 ± 13.2 kg ha−1 year−1, respectively, while the dry fluxes were 2.5 ± 0.8 kg ha−1 year−1, 1.4 ± 0.9 kg ha−1 year−1, 2.3 ± 1.4 kg ha−1 year−1 and 7.5 ± 2.6 kg ha−1 year−1, respectively.  相似文献   

9.
J. Ballesta Claver 《Talanta》2009,79(2):499-506
This paper presents an application of chromatographic separation based on an ultra-short monolithic column and chemiluminescent detection in an FIA type instrument manifold for the determination of four paraben mixtures: methylparaben (MP), ethylparaben (EP), propylparaben (PP) and butylparaben (BP). The separation is achieved in 150 s using two consecutive carriers: first 12% ACN:water that changes 75 s after injection to 27% ACN:water. The detection is based on the oxidation of the hydrolysis product of parabens, p-hydroxybenzoic acid, with Ce(IV) in the presence of Rhodamine 6G which evokes chemiluminescence of sufficient intensity to enable a sensitive determination of these species. After optimization of the variables involved, the analytical method is characterized, displaying the following values for concentration ranges, detection limits and precision, as relative standard deviation at low concentration (0.15 mg l−1)—MP: from 9.9 × 10−7 to 3.3 × 10−4 M; 1.9 × 10−8; 5.6%; EP: from 9.0 × 10−7 to 3.3 × 10−4 M; 2.8 × 10−8; 3.5%; PP: from 8.3 × 10−7 to 9.9 × 10−5 M; 2.3 × 10−8; 4.2%; and BP: from 7.7 × 10−7 to 9.9 × 10−5 M; 4.2 × 10−8 M; 6.2%. The method was applied and validated satisfactorily for the determination of these parabens in cosmetic samples, comparing the results against a liquid chromatography reference method.  相似文献   

10.
A procedure for the extraction and determination of methyl mercury and mercury (II) in fish muscle tissues and sediment samples is presented. The procedure involves extraction with 5% (v/v) 2-mercaptoethanol, separation and determination of mercury species by HPLC-ICPMS using a Perkin-Elmer 3 μm C8 (33 mm × 3 mm) column and a mobile phase 3 containing 0.5% (v/v) 2-mercaptoethanol and 5% (v/v) CH3OH (pH 5.5) at a flow rate 1.5 ml min−1 and a temperature of 25 °C. Calibration curves for methyl mercury (I) and mercury (II) standards were linear in the range of 0-100 μg l−1 (r2 = 0.9990 and r2 = 0.9995 respectively). The lowest measurable mercury was 0.4 μg l−1 which corresponds to 0.01 μg g−1 in fish tissues and sediments. Methyl mercury concentrations measured in biological certified reference materials, NRCC DORM - 2 Dogfish muscle (4.4 ± 0.8 μg g−1), NRCC Dolt - 3 Dogfish liver (1.55 ± 0.09 μg g−1), NIST RM 50 Albacore Tuna (0.89 ± 0.08 μg g−1) and IRMM IMEP-20 Tuna fish (3.6 ± 0.6 μg g−1) were in agreement with the certified value (4.47 ± 0.32 μg g−1, 1.59 ± 0.12 μg g−1, 0.87 ± 0.03 μg g−1, 4.24 ± 0.27 μg g−1 respectively). For the sediment reference material ERM CC 580, a methyl mercury concentration of 0.070 ± 0.002 μg g−1 was measured which corresponds to an extraction efficiency of 92 ± 3% of certified values (0.076 ± 0.04 μg g−1) but within the range of published values (0.040-0.084 μg g−1; mean ± s.d.: 0.073 ± 0.05 μg g−1, n = 40) for this material. The extraction procedure for the fish tissues was also compared against an enzymatic extraction using Protease type XIV that has been previously published and similar results were obtained. The use of HPLC-HGAAS with a Phenomenox 5 μm Luna C18 (250 mm × 4.6 mm) column and a mobile phase containing 0.06 mol l−1 ammonium acetate (Merck Pty Limited, Australia) in 5% (v/v) methanol and 0.1% (w/v) l-cysteine at 25 °C was evaluated as a complementary alternative to HPLC-ICPMS for the measurement of mercury species in fish tissues. The lowest measurable mercury concentration was 2 μg l−1 and this corresponds to 0.1 μg g−1 in fish tissues. Analysis of enzymatic extracts analysed by HPLC-HGAAS and HPLC-ICPMS gave equivalent results.  相似文献   

11.
The new ligand 7-methyl-7,13-di-octyl-1,4,10-trioxa-13-aza-7-azonia-cyclopentadecane (L1) has been designed, synthesised and used as ionophore in the development ion-selective electrodes for anionic surfactants. Different PVC-membrane anionic-surfactants-selective electrodes were prepared by using L1 as ionophore and bis(2-ethylhexyl)sebacate (BEHS), dibutyl phthalate (DBP) and nitrophenyl octyl ether (NPOE) as plasticizers. The PVC-membrane electrode containing L1 and NPOE (electrode E1) showed a Nernstian response to lauryl sulfate with a slope of −59.5 mV per decade in a range of concentrations from 1.3 × 10−6 to 6.8 × 10−3 M and a detection limit of 6.0 × 10−7 M. The electrode E1 also showed a reasonable response to other alkyl sulfates and alkylbenzene sulfonates, whereas it does not respond to carboxylates and to cationic and non-ionic surfactants. A similar electrode to E1 but additionally containing the cationic additive n-octylammonium bromide was also prepared (electrode E2) and compared with the response of E1. Selectivity coefficients for different anions with respect to lauryl sulfate were determined by means of the fixed interference method considering lauryl sulfate as the principal anion and using a concentration of 1.0 × 10−2 mol dm−3 for the corresponding interfering anion. The selectivity sequence found for the electrode E1 was: LS > SCN > ClO4 > CH3COO > I > HCO3 > Br > NO3 > NO2 > Cl > IO3 > phosphate > SO32− > C2O42− > SO42−. Electrode E1 showed remarkably better selectivity coefficients than electrode E2.  相似文献   

12.
The reaction of the O3 addition to double bonds of the limonene in the gas phase has been investigated using ab initio methods. Four different possibilities for the O3 addition to the double bonds, which correspond to the two C–C double bonds (endocyclic or exocyclic), and two different orientations of each C–C double bonds, have been considered. The corresponding rate constants have been calculated using the transition-state theory (TST) at the CCSD(T)/6-31G(d) + CF//B3LYP/6-311+G(d,p) level of theory. The high-pressure limit of the overall rate constant at 298 K is found to be ∼2.92 × 10−16 cm3 molecule−1 s−1 that is in a good agreement with the experimental data, and the rate constants of the four individual reaction channels turn out to be 2.1 × 10−16 cm3 molecule−1 s−1, 1.2 × 10−17 cm3 molecule−1 s−1, 6.5 × 10−17 cm3 molecule−1 s−1 and 5.1 × 10−18 cm3 molecule−1 s−1 for 1-endo, 2-endo, 1-exo and 2-exo, respectively.  相似文献   

13.
A novel method for determination of indole-3-acetic acid (IAA) and indole-3-butyric acid (IBA) in an extract from mung bean sprouts using high performance liquid chromatography (HPLC) with chemiluminescence (CL) detection is described. The method is based on the CL reaction of auxin (indole-3-acetic acid and indole-3-butyric acid) with acidic potassium permanganate (KMnO4) and tris(2,2′-bipyridyl)ruthenium(II), which was immobilized on the cationic ion-exchange resin. The chromatographic separation was performed on a Nucleosil RP-C18 column (i.d.: 250 mm × 4.6 mm, particle size: 5 μm, pore size: 100) with an isocratic mobile phase consisting of methanol-water-acetic acid (45:55:1, v/v/v). At a flow rate of 1.0 mL min−1, the total run time was 20 min. Under the optimal conditions, the linear ranges were 5.0 × 10−8 to 5.0 × 10−6 g mL−1 and 5.0 × 10−7 to 1.0 × 10−5 g mL−1 for IAA and IBA, respectively. The detection limits were 2.0 × 10−8 g mL−1 and 2.0 × 10−7 g mL−1 for IAA and IBA, respectively. The relative standard deviation (RSD) of intra-day were 3.1% and 2.3% (n = 11) for 2 × 10−6 g mL−1 IAA and 2 × 10−6 g mL−1 IBA; The relative standard deviations of inter-day precision were 6.9% and 4.9% for 2 × 10−6 g mL−1 IAA and 2 × 10−6 g mL−1 IBA. The proposed method had been successfully applied to the determination of auxin in mung bean sprouts.  相似文献   

14.
A sensitive and robust analytical method for spectrophotometric determination of ethyl xanthate, CH3CH2OCS2 at trace concentrations in pulp solutions from froth flotation process is proposed. The analytical method is based on the decomposition of ethyl xanthate, EtX, with 2.0 mol L−1 HCl generating ethanol and carbon disulfide, CS2. A gas diffusion cell assures that only the volatile compounds diffuse through a PTFE membrane towards an acceptor stream of deionized water, thus avoiding the interferences of non-volatile compounds and suspended particles. The CS2 is selectively detected by UV absorbance at 206 nm (? = 65,000 L mol−1 cm−1). The measured absorbance is directly proportional to EtX concentration present in the sample solutions. The Beer's law is obeyed in a 1 × 10−6 to 2 × 10−4 mol L−1 concentration range of ethyl xanthate in the pulp with an excellent correlation coefficient (r = 0.999) and a detection limit of 3.1 × 10−7 mol L−1, corresponding to 38 μg L−1. At flow rates of 200 μL min−1 of the donor stream and 100 μL min−1 of the acceptor channel a sampling rate of 15 injections per hour could be achieved with RSD < 2.3% (n = 10, 300 μL injections of 1 × 10−5 mol L−1 EtX). Two practical applications demonstrate the versatility of the FIA method: (i) evaluation the free EtX concentration during a laboratory study of the EtX adsorption capacity on pulverized sulfide ore (pyrite) and (ii) monitoring of EtX at different stages (from starting load to washing effluents) of a flotation pilot plant processing a Cu-Zn sulfide ore.  相似文献   

15.
The collisional broadening and shift rate coefficients of the “forbidden“ 6p2 3P0 → 6p2 3P1 transition in lead were determined by diode laser absorption measurements performed simultaneously in two resistively heated hot-pipes. One hot-pipe contained Pb vapor and noble gas (Ar or He) at low pressure, while the other was filled with Pb and noble gas at variable pressure. The measurements were performed at temperatures of 1220 K and 1290 K, i.e., lead number densities of 4.8 × 1015 cm− 3 and 1.2 × 1016 cm− 3. The broadening rates were obtained by fitting the experimental collisionally broadened absorption line shapes to theoretical Voigt profiles. The shift rates were determined by measuring the difference between the peak absorption positions in the spectra measured simultaneously in the heat pipe filled with noble gas at reference pressure and the one with noble gas at variable pressure. The following data for the broadening and shift rate coefficients due to collisions with Ar and He were obtained: γBAr = (3.4 ± 0.1) × 10− 10 cm3 s− 1, γBHe = (3.8 ± 0.1) × 10− 10 cm3 s− 1, γSAr = (− 7.3 ± 0.8) × 10− 11 cm3 s− 1, γSHe = (− 6.5 ± 0.7) × 10− 11 cm3 s− 1.  相似文献   

16.
A method for determination of nine brominated phenols as environmental risk compounds was developed by on-line coupled capillary isotachophoresis and capillary zone electrophoresis (ITP–CZE). For ITP step, 1 × 10−2 mol L−1 hydrochloric acid with 3 × 10−2 mol L−1 ammediol pH 9.1 was used as the leading electrolyte, and 3 × 10−2 mol L−1 β-alanine with 2 × 10−2 mol L−1 sodium hydroxide pH 10.05 was used as the terminating electrolyte. As the background electrolyte for CZE separation, 2.5 × 10−2 mol L−1 β-alanine with 2.5 × 10−2 mol L−1 lysine pH 9.6 was used. All electrolytes contained 0.05% or 0.1% (m/v) hydroxyethylcellulose to suppress the electroosmotic flow. UV detection at wavelength 220 nm was used. Detection limits in order of tens of nmol L−1 were achieved. Good repeatability of migration times (less than 0.33% RSD) and good repeatability of peak areas (less than 7.19% RSD) at concentration level 5 × 10−8 mol L−1 were observed. Developed ITP–CZE method was applied to determination of brominated phenols in spiked tap and river water samples.  相似文献   

17.
The usefulness of the secondary line at 252.744 nm and the approach of side pixel registration were evaluated for the development of a method for sequential multi-element determination of Cu, Fe, Mn and Zn in soil extracts by high-resolution continuum source flame atomic absorption spectrometry (HR-CS FAAS). The influence of side pixel registration on the sensitivity and linearity was investigated by measuring at wings (248.325, 248.323, 248.321, 248.329, and 248.332 nm) of the main line for Fe at 248.327 nm. For the secondary line at 252.744 nm or side pixel registration at 248.325 nm, main lines for Cu (324.754 nm), Mn (279.482 nm) and Zn (213.875 nm), sample flow-rate of 5.0 mL min−1 and calibration by matrix matching, analytical curves in the 0.2-1.0 mg L−1 Cu, 1.0-20.0 mg L−1 Fe, 0.2-2.0 mg L−1 Mn, 0.1-1.0 mg L−1 Zn ranges were obtained with linear correlations better than 0.998. The proposed method was applied to seven soil samples and two soil reference materials (IAC 277; IAC 280). Results were in agreement at a 95% confidence level (paired t-test) with reference values. Recoveries of analytes added to soil extracts containing 0.15 and 0.30 mg L−1 Cu, 7.0 and 14 mg L−1 Fe, 0.60 and 1.20 mg L−1 Mn, 0.07 and 0.15 mg L−1 Zn, varied within the 94-99, 92-98, 93-101, and 93-103% intervals, respectively. The relative standard deviations (n = 12) were 2.7% (Cu), 1.4% (Fe - 252.744 nm), 5.7% (Fe - 248.325 nm), 3.2% (Mn) and 2.8% (Zn) for an extract containing 0.35 mg L−1 Cu, 14 mg L−1 Fe, 1.1 mg L−1 Mn and 0.12 mg L−1 Zn. Detection limits were 5.4 μg L−1 Cu, 55 μg L−1 Fe (252.744 nm), 147 μg L−1 Fe (248.325 nm), 3.0 μg L−1 Mn and 4.2 μg L−1 Zn.  相似文献   

18.
High-performance liquid chromatography (HPLC) with tris(2,2′-bipyridyl)ruthenium(II) chemiluminescence detection methodology is reported for the determination of the atypical antipsychotic drug quetiapine and the observation of its major active and inactive metabolites in human urine and serum. The method uses a monolithic chromatographic column allowing high flow rates of 3 mL min−1 enabling rapid quantification. Flow injection analysis (FIA) with tris(2,2′-bipyridyl)ruthenium(II) chemiluminescence detection and HPLC time of flight mass spectrometry (TOF-MS) were used for the determination of quetiapine in a pharmaceutical preparation to establish its suitability as a calibration standard. The limit of detection achieved with FIA was 2 × 10−11 mol L−1 in simple aqueous solution. The limits of detection achieved with HPLC were 7 × 10−8 and 2 × 10−10 mol L−1 in urine and serum, respectively. The calibration range for FIA was between 5 × 10−9 and 1 × 10−6 mol L−1. The calibration ranges for HPLC were between 1 × 10−7-1 × 10−4 and 1 × 10−8-1 × 10−4 mol L−1 in urine and serum, respectively. The quetiapine concentrations in patient samples were found to be 3 × 10−6 mol L−1 in urine and 7 × 10−7 mol L−1 in serum. Without the need for preconcentration, the HPLC detection limits compared favourably with those in previously published methodologies. The metabolites were identified using HPLC-TOF-MS.  相似文献   

19.
Screen-printed electrodes modified with carbon paste that consisted of graphite powder dispersed in ionic liquids (IL) were used for the electrochemical determination of dopamine, adrenaline and dobutamine in aqueous solutions by means of cyclic voltammetry. The IL plays a dual role in modifying compositions, acting both as a binder and chemical modifier (ion-exchanger); ion-exchange analyte pre-concentration increases analytical signal and improves the sensitivity. Calibration graphs are linear in concentration range 3.9 × 10−6 to 1.0 × 10−4 M (dopamine), 2.9 × 10−7 to 1.0 × 10−4 M (adrenaline) and 1.7 × 10−7 to 1.0 × 10−4 M (dobutamine); detection limits are (1.2 ± 0.1) × 10−6, (1.3 ± 0.1) × 10−7 and (5.3 ± 0.1) × 10−8 M, respectively. Using an additive of Co (III) tetrakis-(tert-butyl)-phthalocyanine leads to the increase of signal and lowering detection limit. Some practical advises concerning both the sensor design and selectivity of catecholamine determination are provided.  相似文献   

20.
The kinetics of the radical reactions of CH3 with HCl or DCl and CD3 with HCl or DCl have been investigated in a temperature controlled tubular reactor coupled to a photoionization mass spectrometer. The CH3 (or CD3) radical, R, was produced homogeneously in the reactor by a pulsed 193 nm exciplex laser photolysis of CH3COCH3 (or CD3COCD3). The decay of CH3/CD3 was monitored as a function of HCl/DCl concentration under pseudo-first-order conditions to determine the rate constants as a function of temperature, typically from 188 to 500 K. The rate constants of the CH3 and CD3 reactions with HCl had strong non-Arrhenius behavior at low temperatures. The rate constants were fitted to a modified Arrhenius expression k = QA exp (−Ea/RT) (error limits stated are 1σ + Students t values, units in cm3 molecule−1 s−1): k(CH3 + HCl) = [1.004 + 85.64 exp (−0.02438 × T/K)] × (3.3 ± 1.3) × 10−13 exp [−(4.8 ± 0.6) kJ mol−1/RT] and k(CD3 + HCl) = [1.002 + 73.31 exp (−0.02505 × T/K)] × (2.7 ± 1.2) × 10−13 exp [−(3.5 ± 0.5) kJ mol−1/RT]. The radical reactions with DCl were studied separately over a wide ranges of temperatures and in these temperature ranges the rate constants determined were fitted to a conventional Arrhenius expression k = A exp (−Ea/RT) (error limits stated are 1σ + Students t values, units in cm3 molecule−1 s−1): k(CH3 + DCl) = (2.4 ± 1.6) × 10−13 exp [−(7.8 ± 1.4) kJ mol−1/RT] and k(CD3 + DCl) = (1.2 ± 0.4) × 10−13 exp [−(5.2 ± 0.2) kJ mol−1/RT] cm3 molecule−1 s−1.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号