Search results for "SOLID-PHASE MICROEXTRACTION"

showing 10 items of 91 documents

In-tube solid phase microextraction coupled to miniaturized liquid chromatography for both, noble metal nanoparticle assessment and sensitive plasmon…

2021

Abstract Colorimetric localized surface plasmon resonance (LSPR) as analytical response is applied for a wide number of chemical sensors and biosensors. However, the dependence of different factors, such as size distribution of nanoparticles (NPs), shape, dielectric environment, inter-particle distance and matrix, among others, can provide non-reliable results by UV–vis spectrometry in complex matrices if NP assessment is not carried out, particularly at low levels of analyte concentrations. Miniaturized liquid chromatography, capillary (CapLC) and nano (NanoLC), coupled on line with in-tube solid phase microextraction (IT-SPME) is proposed for the first time for both, controlling suitabili…

AnalyteChromatographyChemistry010401 analytical chemistryNanoparticle02 engineering and technologyengineering.material021001 nanoscience & nanotechnologyMass spectrometrySolid-phase microextraction01 natural sciencesBiochemistry0104 chemical sciencesAnalytical ChemistryMatrix (chemical analysis)engineeringEnvironmental ChemistryNoble metalSurface plasmon resonance0210 nano-technologyBiosensorSpectroscopyAnalytica chimica acta
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In-tube solid-phase microextraction-capillary liquid chromatography as a solution for the screening analysis of organophosphorus pesticides in untrea…

2006

This paper describes a method for the selective screening of organophosphorus pesticides in water. In-tube solid-phase microextraction (SPME) in an open capillary column coupled to capillary liquid chromatography (LC) with UV detection has been used to effect preconcentration, separation and detection of the analytes in the same assembly. For in-tube SPME two capillary columns of the same length and different internal diameters and coating thicknesses have been tested and compared, a 30 cm x 0.25 mm I.D., 0.25 micro m thickness coating column, and a 30 cm x 0.1 mm I.D., 0.1 micro m of coating thickness column. In both columns the coating was 95% dimethylpolysiloxane (PDMS)-5% diphenylpolysi…

AnalyteChromatographyChemistryCapillary actionOrganic ChemistryAnalytical chemistryWaterGeneral Medicineengineering.materialEnvironmentSolid-phase microextractionBiochemistryHigh-performance liquid chromatographyAnalytical ChemistryNonylphenolchemistry.chemical_compoundPolybrominated diphenyl ethersOrganophosphorus CompoundsCoatingengineeringSample preparationPesticidesSolid Phase MicroextractionWater Pollutants ChemicalChromatography LiquidJournal of chromatography. A
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Green aspects, developments and perspectives of liquid phase microextraction techniques.

2014

Determination of analytes at trace levels in complex samples (e.g. biological or contaminated water or soils) are often required for the environmental assessment and monitoring as well as for scientific research in the field of environmental pollution. A limited number of analytical techniques are sensitive enough for the direct determination of trace components in samples and, because of that, a preliminary step of the analyte isolation/enrichment prior to analysis is required in many cases. In this work the newest trends and innovations in liquid phase microextraction, like: single-drop microextraction (SDME), hollow fiber liquid-phase microextraction (HF-LPME), and dispersive liquid-liqu…

AnalyteChromatographyChemistryLiquid Phase MicroextractionEnvironmental pollutionSolid-phase microextractionAnalytical ChemistrySolutionschemistry.chemical_compoundCapillary electrophoresisLiquid–liquid extractionIonic liquidSolventsSample preparationGas chromatographyTalanta
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Application of solid-phase microextraction combined with derivatization to the enantiomeric determination of amphetamines.

2005

Abstract The utility of combining chiral derivatization and solid-phase microextraction (SPME) for the enantiomeric analysis of primary amphetamines by liquid chromatography has been investigated. Different derivatization/extraction strategies have been evaluated and compared using the chiral reagent o -phthaldialdehyde (OPA)– N -acetyl- l -cysteine (NAC) and fibres with a Carbowax-templated resin coating. Amphetamine, norephedrine and 3,4-methylenedioxyamphetamine (MDA) were used as model compounds. On the basis of the results obtained, a new method is presented based on the derivatization of the analytes in solution followed by SPME of the OPA–NAC derivatives formed. The proposed conditio…

AnalyteClinical BiochemistryPhenylpropanolaminePharmaceutical ScienceSolid-phase microextractionAnalytical Chemistrychemistry.chemical_compoundDrug DiscoveryHumansDerivatizationSpectroscopyChromatography High Pressure LiquidAqueous solutionChromatographyExtraction (chemistry)AmphetaminesReproducibility of ResultsStereoisomerismSolutionsSpectrometry FluorescencechemistryReagentCentral Nervous System StimulantsIndicators and ReagentsEnantiomerQuantitative analysis (chemistry)Journal of pharmaceutical and biomedical analysis
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Trends in Online Intube Solid Phase Microextraction

2017

BioanalysisChromatographyEnvironmental analysisChemistryEnvironmental chemistry010401 analytical chemistry02 engineering and technology021001 nanoscience & nanotechnology0210 nano-technologySolid-phase microextraction01 natural sciencesFood Analysis0104 chemical sciences
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Recent advances of in-tube solid-phase microextraction

2015

Abstract In-tube solid-phase microextraction (SPME) is ideally suited to developing green extraction by combining miniaturization, automation and reduction of solvent consumption. SPME has been used for the analysis of environmental, biological, and food samples, and numerous works have shown the benefits of using SPME. However, for full development of in-tube SPME, effort is still needed to overcome limitations, such as low extraction efficiency, selectivity and mechanical stability. To achieve these objectives, research on in-tube SPME is mainly focused in two scenarios: (1) the coupling of in-tube SPME with new chromatographic modalities, such as miniaturized liquid chromatography; and, …

BioanalysisChromatographyMaterials scienceEnvironmental analysisMechanical stabilitybusiness.industrySolid-phase microextractionProcess engineeringbusinessSpectroscopyAnalytical ChemistryTrAC Trends in Analytical Chemistry
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A sustainable on-line CapLC method for quantifying antifouling agents like irgarol-1051 and diuron in water samples: Estimation of the carbon footpri…

2016

In this work, in-tube solid phase microextraction (in-tube SPME) coupled to capillary LC (CapLC) with diode array detection has been reported, for on-line extraction and enrichment of booster biocides (irgarol-1051 and diuron) included in Water Frame Directive 2013/39/UE (WFD). The analytical performance has been successfully demonstrated. Furthermore, in the present work, the environmental friendliness of the procedure has been quantified by means of the implementation of the carbon footprint calculation of the analytical procedure and the comparison with other methodologies previously reported. Under the optimum conditions, the method presents good linearity over the range assayed, 0.05-1…

BiocideEnvironmental Engineeringchemistry.chemical_element010501 environmental sciencesSolid-phase microextractionOnline Systems01 natural sciencesBiofoulingLimit of DetectionEnvironmental ChemistryWaste Management and DisposalSolid Phase MicroextractionCarbon Footprint0105 earth and related environmental sciencesDetection limitChromatographyFoulingHerbicidesTriazinesChemistry010401 analytical chemistryExtraction (chemistry)Pollution0104 chemical sciencesDiuronCarbon footprintCarbonWater Pollutants ChemicalChromatography LiquidDisinfectantsEnvironmental MonitoringScience of The Total Environment
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A miniaturized method for estimating di(2-ethylhexyl) phthalate in bivalves as bioindicators.

2012

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 di(2-ethylhexyl) phthalate (DEHP) in biota samples by capillary liquid chromatography coupled to in-tube solid phase microextraction and diode array detection. Recovery studies showed that the combination of C18-Florisil® was optimal using low amount of samples (0.1 g) and with low volumes of acetonitrile-water (2.6 mL 1:3.25, v/v). The sample is processed in less than 30 min, no evaporation step is required. The proposed method was applied to the analysis of DEHP in mussels and of the coastal waters in which they…

BioconcentrationSolid-phase microextractionBiochemistryDispersantAnalytical ChemistryMatrix (chemical analysis)chemistry.chemical_compoundLimit of DetectionDiethylhexyl PhthalateMediterranean SeaAnimalsSolid Phase MicroextractionDetection limitChromatographyMiniaturizationOrganic ChemistryPhthalateGeneral MedicineBivalviaSolventchemistryEnvironmental chemistryEnvironmental PollutantsDispersion (chemistry)Chromatography LiquidEnvironmental MonitoringJournal of chromatography. A
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Ion-pair in-tube solid-phase microextraction and capillary liquid chromatography using a titania-based column: application to the specific lauralkoni…

2012

Abstract A quick, miniaturized and on-line method has been developed for the determination in water of the predominant homologue of benzalkonium chloride, dodecyl dimethyl benzyl ammonium chloride or lauralkonium chloride (C 12 -BAK). The method is based on the formation of an ion-pair in both in-tube solid-phase microextraction (IT-SPME) and capillary liquid chromatography. The IT-SPME optimization required the study of the length and nature of the stationary phase of capillary and the processed sample volume. Because to the surfactant character of the analyte both, the extracting and replacing solvents, have played a decisive role in the IT-SPME optimized procedure. Conditioning the capil…

Capillary actionDetergentsAnalytical chemistrySolid-phase microextractionBiochemistryChlorideAnalytical Chemistrychemistry.chemical_compoundLimit of DetectionmedicineSolid Phase Microextractionchemistry.chemical_classificationDetection limitTitaniumCapillary electrochromatographyChromatographyChemistryOrganic ChemistryWaterGeneral MedicineAmmonium chlorideCounterionBenzalkonium CompoundsAmmonium acetateWater Pollutants Chemicalmedicine.drugChromatography LiquidJournal of chromatography. A
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Recent Advances in Sample Preparation for Pesticide Analysis

2012

Much progress has been made in pesticide analysis in the past decade. During this time, hyphenated techniques involving highly efficient separation with sensitive mass spectrometric detection have become the methods of choice. Even with such powerful instrumental techniques, a demanding task in pesticide residue analysis is the development of multiresidue methods for the determination of pesticides in air, water, soil, sediment, biota, and food. This chapter summarizes the analytical characteristics of the different methods of sample preparation for the determination of pesticide residues in a variety of food matrices, and surveys their recent applications in combination with gas chromatogr…

Capillary electrophoresisChromatographyPesticide residuebusiness.industryChemistryExtraction (chemistry)Molecularly imprinted polymerSupercritical fluid extractionSample preparationSolid phase extractionProcess engineeringbusinessSolid-phase microextraction
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