Search results for "SOLVENT"

showing 10 items of 1395 documents

Miniaturized matrix solid phase dispersion procedure and solid phase microextraction for the analysis of organochlorinated pesticides and polybromina…

2009

Abstract This work has developed a miniaturized method based on matrix solid phase dispersion (MSPD) using C18 as dispersant and acetonitrile–water as eluting solvent for the analysis of legislated organochlorinated pesticides (OCPs) and polybrominated diphenylethers (PBDEs) in biota samples by GC with electron capture (GC-ECD). The method has compared Florisil®-acidic Silica and C18 as dispersant for samples as well as different solvents. Recovery studies showed that the combination of C18–Florisil® was better when using low amount of samples (0.1 g) and with low volumes of acetonitrile–water (2.6 mL). The use of SPME for extracting the analytes from the solvent mixture before the injectio…

Detection limitChromatography GasChromatographyChemistryOrganic ChemistryPesticide ResiduesAnalytical chemistryGeneral MedicineSolid-phase microextractionBiochemistryDispersantBivalviaAnalytical ChemistrySolventElectron capture detectorHalogenated Diphenyl EthersHydrocarbons ChlorinatedAnimalsSample preparationSolid phase extractionGas chromatographyFood AnalysisSolid Phase MicroextractionJournal of Chromatography A
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Determination of water-soluble UV-filters in sunscreen sprays by liquid chromatography.

2002

Abstract Liquid chromatography was used for the determination of the three most used water-soluble UV filters, benzophenone-4 (BZ4), terephthalylidene dicamphor sulfonic acid (TDS), and phenylbenzimidazole sulphonic acid (PBS), in aqueous sunscreen sprays. A C 18 stationary phase and an isocratic mobile phase of EtOH–20 m M sodium acetate buffer of pH 4.6 (30:70, v/v) were used at a flow-rate of 0.5 ml min −1 . Mobile phase was also used as solvent for samples and standards. UV detection was at 313 nm. The analytical run took 5.5 min. The limits of detection were 0.5, 0.9 and 2 μg ml −1 for BZ4, TDS and PBS, respectively. The proposed method does not involve highly toxic solvents.

Detection limitChromatographyAqueous solutionChemistryUltraviolet RaysOrganic ChemistryGeneral MedicineReversed-phase chromatographySulisobenzoneReference StandardsBiochemistryHigh-performance liquid chromatographySensitivity and SpecificityAnalytical ChemistrySolventchemistry.chemical_compoundPhase (matter)Spectrophotometry UltravioletSodium acetateSunscreening AgentsChromatography LiquidJournal of chromatography. A
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Determination of atranol and chloroatranol in perfumes using simultaneous derivatization and dispersive liquid-liquid microextraction followed by gas…

2013

Abstract A new analytical method based on simultaneous derivatization and dispersive liquid–liquid microextraction (DLLME) followed by gas chromatography–mass spectrometry (GC–MS), for the determination of the allergenic compounds atranol and chloroatranol in perfumes, is presented. Derivatization of the target analytes by means of acetylation with anhydride acetic in carbonate buffer was carried out. Thereby volatility and detectability were increased for improved GC–MS sensitivity. In addition, extractability by DLLME was also enhanced due to a less polar character of the solutes. A liquid–liquid extraction was performed before DLLME to clean up the sample and to obtain an aqueous sample …

Detection limitChromatographyAqueous solutionTime FactorsMolecular StructureLiquid Phase MicroextractionOsmolar ConcentrationHydrogen-Ion ConcentrationBiochemistryGas Chromatography-Mass SpectrometryAnalytical ChemistryPerfumeSolventMatrix (chemical analysis)chemistry.chemical_compoundchemistryReagentStandard additionBenzaldehydesSolventsEnvironmental ChemistryGas chromatography–mass spectrometryDerivatizationSpectroscopyAnalytica chimica acta
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Determination of Paint Solvents by Vapour Phase Fourier Transform Infrared Spectrometry.

1997

Abstract A fast procedure has been developed for the direct determination of paint solvents. The method is based on the injection of small volumes of untreated solvent mixtures into a heated Pyrex glass reactor in which the sample is volatilized and introduced by means of a flow of nitrogen into an IR multiple pass gas cell and the spectrum in the mid-IR region is registered as a function of time. Data found for samples are interpolated in calibration graphs obtained by injecting different volumes of pure compounds which constitute the solvent mixture. A methylisobutylketone (MIBK) toluene mixture was used as test system to develop the proposed procedure. The method provides a limit of dete…

Detection limitChromatographyChemistryAnalytical chemistryInfrared spectroscopychemistry.chemical_elementPaint thinnerNitrogenTolueneAtomic and Molecular Physics and OpticsAnalytical ChemistrySolventchemistry.chemical_compoundPhase (matter)CalibrationSpectroscopySpectroscopy Letters
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Development of a sensitive method for determining traces of prohibited acrylamide in cosmetic products based on dispersive liquid-liquid microextract…

2020

Abstract According to the European Regulation on cosmetic products, the presence of acrylamide in these consumer products is not allowed due to its mutagenic and potentially carcinogenic effects. Despite this ban, acrylamide might be present in those cosmetic products containing acrylamide-based polymers. However, there is no analytical method for its determination in this type of matrices. Based on this, the development of analytical methods for the determination of acrylamide in cosmetic products is required to guarantee consumer safety. In this work, an analytical method for determining traces of prohibited acrylamide in cosmetic products is presented for the first time. The method is ba…

Detection limitChromatographyChloroformAqueous solutionChemistry010401 analytical chemistryExtraction (chemistry)02 engineering and technology021001 nanoscience & nanotechnology01 natural sciences0104 chemical sciencesAnalytical ChemistrySolventchemistry.chemical_compoundAcrylamide0210 nano-technologyDerivatizationEnrichment factorSpectroscopyMicrochemical Journal
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On-line solvent recycling: a tool for the development of clean analytical chemistry in flow injection Fourier transform infrared spectrometry. Determ…

1998

Abstract A flow injection strategy has been developed for the direct determination of ketoprofen in pharmaceuticals by Fourier transform infrared spectrometry also incorporating a distillation unit which allows the carbon tetrachloride employed to dissolve samples and standards and used as a carrier to be recovered on-line. The system developed permits a drastic reduction of reagent consumption and easy and fast sampling and cleaning of the measurement cell. For the quantification of ketoprofen in pharmaceuticals the carbonyl bands at 1712 and 1666 cm −1 were employed and the developed method provided a 3 σ limit of detection of 0.04 mg ml −1 , a dynamic range up to 10 mg ml −1 and typical …

Detection limitChromatographyDynamic rangeChemistryAnalytical chemistryInfrared spectroscopyBiochemistryAnalytical Chemistrylaw.inventionSolventsymbols.namesakeFourier transformlawReagentsymbolsEnvironmental ChemistryQuantitative analysis (chemistry)DistillationSpectroscopyAnalytica Chimica Acta
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Determination of N-nitrosodiethanolamine in cosmetic products by reversed-phase dispersive liquid-liquid microextraction followed by liquid chromatog…

2016

A new analytical method for the determination of N-nitrosodiethanolamine (NDELA), a very harmful compound not allowed in cosmetic products, is presented. The method is based on a new approach of dispersive liquid-liquid microextraction (DLLME) useful for extraction of highly polar compounds, called reversed-phase DLLME (RP-DLLME), followed by liquid chromatography-ultraviolet/visible (LC-UV/Vis) determination. The variables involved in the RP-DLLME process were studied to provide the best enrichment factors. Under the optimized conditions, a mixture of 750µL of acetone (disperser solvent) and 125µL of water (extraction solvent) was rapidly injected into 5mL of toluene sample solution. The e…

Detection limitChromatographyElutionLiquid Phase Microextraction010401 analytical chemistryExtraction (chemistry)02 engineering and technologyCosmetics021001 nanoscience & nanotechnology01 natural sciencesToluene0104 chemical sciencesAnalytical ChemistrySolventchemistry.chemical_compoundchemistryGriess testLimit of DetectionSolventsDiethylnitrosamine0210 nano-technologyEnrichment factorAmmonium acetateChromatography LiquidTalanta
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Application of ACC method to synchronous luminiscence: determination of alpha-tocopherol and alpha-tocopheryl acetate in beverages.

2001

A new method based on the Q parameter, that permits the determination of the C(compound A)/C(compound B) ratio without preparing calibration graphs of the two compounds, is proposed. This method has been applied to signals obtained by synchronous luminiscence. Simultaneous determination of alpha-tocopherol and alpha-tocopheryl acetate in beverages using synchronous fluorescence has been carried out. To isolate the compounds from samples, liquid extraction with n-hexane as the organic phase was employed. The presence of interferences was tested using the apparent content curves (ACC) method and the C(alpha-tocopherol)/C(alpha-tocopheryl acetate) ratio was calculated using the Q parameter. Th…

Detection limitChromatographyExtraction (chemistry)Fluorescence spectrometryAnalytical chemistryReproducibility of ResultsAcetatesBiochemistrySensitivity and SpecificityBeverageschemistry.chemical_compoundSpectrometry FluorescencechemistryModels ChemicalLuminescent MeasurementsSolventsHexanesVitamin ETocopheryl acetateTocopherolalpha-TocopherolQuantitative analysis (chemistry)Vitamin E AcetateFresenius' journal of analytical chemistry
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Novel approach for the determination of azithromycin in pharmaceutical formulations by Fourier transform infrared spectroscopy in film-through transm…

2013

Abstract This work reports the development of a new method for the determination of azithromycin in pharmaceutical formulations employing Fourier transform infrared (FTIR) technique. The measurements were performed using a novel approach based on a film-through transmission mode. Several variables that could influence the analytical performance of the method were evaluated (solvent, nominal resolution, number of scans, mode of measurement and spectral region selected for measurement). Acetonitrile was the best solvent for the determination of azithromycin, employing the absorption band of the C O group at 1729 cm− 1. The extraction of azithromycin from the formulations was made by mechanica…

Detection limitChromatographyInfraredChemistryResolution (electron density)Analytical chemistryAnalytical ChemistrySolventsymbols.namesakechemistry.chemical_compoundFourier transformAbsorption bandsymbolsFourier transform infrared spectroscopyAcetonitrileSpectroscopyMicrochemical Journal
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High-performance liquid chromatography of lactose with evaporative light scattering detection, applied to determine fine particle dose of carrier in …

2005

A method for quantification of the fine particle dose of lactose is described, using a hydrophilic interaction chromatography (HILIC) method and evaporative light scattering detection. The HILIC method used an aminopropyl column and a mobile phase consisting of acetonitril/water (80/20, v/v) for isocratic elution. Sensitive chromatography was obtained using a low concentration of water in the extraction solvent. The detection limit (RSD10%) at an injection volume of 10 microL is 10 microg/mL. Linearity was obtained in the range of 10-80 microg/mL (R(2)0.99). A relative standard deviation (RSD) of 0.5% (N=6) demonstrated good precision of the optimized method.

Detection limitChromatographyLightChemistryHydrophilic interaction chromatographyOrganic ChemistryExtraction (chemistry)Analytical chemistryReproducibility of ResultsLactoseGeneral MedicineBiochemistryHigh-performance liquid chromatographyLight scatteringAnalytical ChemistrySolventChromatography detectorAdministration InhalationScattering RadiationParticlePowdersChromatography High Pressure LiquidJournal of Chromatography A
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