Search results for "Sodium nitrate"

showing 10 items of 11 documents

Multi-elemental determination of heavy elements in plastics using X-ray fluorescence after destruction of the polymer by molten sodium hydroxide

1992

In this paper a method is proposed for the multielemental analysis of Sb(III), Ba, Cd, Cr(III), Hg, Pb and As(III) in plastics, using X-ray fluorescence after alkaline decomposition and preconcentration by (co)precipitation. The organic matrix is destroyed by decomposition with sodium hydroxide melted in a silver crucible by the open system technique, using sodium nitrate as auxiliary oxidant. The variables which influence preconcentration are optimized: digestion time, pH, salinity, carrier and sodium diethyldithiocarbamate (DDTC) and sodium rhodizonate (R) as precipitants. The calibration curves were linear up to 200 μg of the element present, except for lead (150 μg) antimony(III) (100 μ…

Calibration curveSodiumInorganic chemistrychemistry.chemical_elementX-ray fluorescenceBariumBiochemistryAnalytical Chemistrychemistry.chemical_compoundchemistryAntimonySodium nitrateSodium hydroxideSodium diethyldithiocarbamateFresenius' Journal of Analytical Chemistry
researchProduct

Sodium nitrate and tungsten as matrix modifiers for the determination of arsenic in shotgun pellets by electrothermal atomic absorption spectrometry

2001

A method for the determination of arsenic in a complicated sample matrix by Zeeman effect electrothermal atomic absorption spectrometry using tungsten and sodium nitrate as matrix modifiers was developed. The determination of arsenic in SRM C2416 (Bullet Lead) and SRM 2710 (Montana Soil) by ETAAS using a mixture of palladium and magnesium nitrate as a matrix modifier failed to obtain the certified concentrations at the 95% level of confidence using the t-test. Both tungsten and sodium nitrate as matrix modifiers stabilized arsenic so that the certified concentrations of the SRMs were determined with high accuracy and precision (RSD   0.999), with low detection and quantification limits, wer…

ChemistryAnalytical chemistryPelletschemistry.chemical_elementTungstenAnalytical Chemistrylaw.inventionMatrix (chemical analysis)Magnesium nitratechemistry.chemical_compoundlawSodium nitrateStandard additionAtomic absorption spectroscopySpectroscopyArsenicJ. Anal. At. Spectrom.
researchProduct

Atomic-absorption spectrometric determination of calcium, magnesium and potassium in leaf samples after decomposition with molten sodium hydroxide

1991

Abstract The decomposition of standard leaf samples of varied origin and nature by fusion with sodium hydroxide in an open system has been studied. The use of sodium nitrate as an auxiliary agent facilitated the mineralization of most of the samples. The solutions obtained were analysed for calcium, magnesium and potassium by flame atomic-absorption spectrometry. The method is fast and quite precise, with absolute standard deviations of 0.04–0.13, 0.002-0.03 and 0.04–0.12% for calcium, magnesium and potassium contents of O.8-5.0, 0.13–0.48 and 0.36–2.2% respectively. The limits of detection (μg/ml) in the determination step were 0.10 for calcium, 0.011 for magnesium, and 0.09 for potassium.

Detection limitMagnesiumSodiumPotassiumAnalytical chemistrychemistry.chemical_elementCalciumAnalytical Chemistrylaw.inventionchemistry.chemical_compoundchemistrylawSodium hydroxideSodium nitrateAtomic absorption spectroscopyNuclear chemistryTalanta
researchProduct

Hydrolysis of methyltin(IV) trichloride in aqueous NaCl and NaNO3 solutions at different ionic strengths and temperatures

1999

The hydrolysis of methyltin(IV) trichloride (CH 3 SnCl 3 ) has been studied in aqueous NaCl and NaNO 3 solutions (0 < l/mol dm -3 ≤1), at different temperatures (15 ≤ T/°C ≤ 45) by potentiometric measurements (H + -glass electrode). By considering the generic hydrolytic reaction pCH 3 Sn 3+ + qH 2 O = (CH 3 Sn) p (OH) q 3p-q +qH + (logβ pq ), we have the formation of five species and logβ 12 = -3.36, logβ 13 = -8.99, logβ 14 = -20.27 and logβ 25 = -7.61. The first hydrolysis step is measurable only at very low pH values and was not determined: a rough estimate of the hydrolysis constant is logβ 11 = -1.5 (± 0.5). The dependence on ionic strength of logβ pq is quite different in NaNO 3 and N…

Hydrolysis constantAqueous solutionChemistryPotentiometric titrationInorganic chemistryIonic bondingGeneral ChemistryGlass electrodelaw.inventionInorganic Chemistrychemistry.chemical_compoundHydrolysisIonic strengthSodium nitratelawApplied Organometallic Chemistry
researchProduct

Analysis of toxic elements in plastic components for toys. Multi-elemental determination by x-ray fluorescence

1993

Abstract An x-ray fluorescence method is proposed for the multi-elemental determination of toxic elements in plastic articles for children, viz., Sb(III), Ba, Cd, Cr(III), Hg, Pb and As(III). Mineralization is achieved by using molten sodium hydroxide to decompose the organic matrix, with sodium nitrate as auxiliary oxidant. Stable solutions containing the chemical species for analysis are obtained. The species are separated from the solution by (co)precipitation, in a medium of NH+4-NH3 buffer (pH 8.5) with sodium diethyldithiocarbamate, sodium rhodizonate and Fe3+, which acts as a carrier. The precipitates deposited on filter-paper are placed in the x-ray spectrometer in fine layer morpho…

Precipitation (chemistry)SodiumInorganic chemistryAnalytical chemistryX-ray fluorescencechemistry.chemical_elementBiochemistryAnalytical Chemistrylaw.inventionchemistry.chemical_compoundchemistrySodium nitratelawSodium hydroxideEnvironmental ChemistrySample preparationAtomic absorption spectroscopySpectroscopySodium diethyldithiocarbamateAnalytica Chimica Acta
researchProduct

Importance of Sodium Nitrate in the Maturation Process of Gouda Cheese

2011

The aim of this study was to observe the dynamics of sodium nitrate during ripening, in was introduced in different amounts in the recipe. Sodium nitrate is the chemical compound also known as Chile saltpeter or Peru saltpeter, is used as an ingredient as a food preservative. Sodium nitrate should not be confused with the related compound, sodium nitrite. Sodium nitrate in the cheese gives a longer time of preservation (Moore J.C., 2010).

PreservativeGeography Planning and DevelopmentFood preservationCheese ripeningManagement Monitoring Policy and Lawchemistry.chemical_compoundIngredientGouda cheesefoodchemistrySodium nitrateCheesemakingFood sciencefood.cheeseSodium nitriteBulletin of University of Agricultural Sciences and Veterinary Medicine Cluj-Napoca. Agriculture
researchProduct

Solution properties of polyelectrolytes

1991

Abstract Chromatographic data for sodium polystyrene sulphonate were obtained on both silica- and polymer-based size-exclusion supports using mobile phases of various pH and ionic strength. Deviations of the elution volume were observed towards both lower and higher values relative to the reference calibration graph obtained with uncharged standards. An empirical correlation is proposed in order to account for all the secondary effects observed. The general applicability of this correlation was further tested for chromatographic data obtained for a series of peptides and proteins on a silica-based support under very different eluent conditions. Deviations from ideal elution behaviour such a…

chemistry.chemical_classificationChromatographyAqueous solutionCalibration curveChemistryElutionSodiumSize-exclusion chromatographyOrganic ChemistryInorganic chemistryAnalytical chemistrychemistry.chemical_elementGeneral MedicinePolymerBiochemistryPolyelectrolyteAnalytical Chemistrychemistry.chemical_compoundColumn chromatographyIonic strengthSodium nitratePhase (matter)Ideal (ring theory)Sodium polystyrene sulphonateJournal of Chromatography A
researchProduct

Apparent molar volumes of potassium nitrate and sodium nitrate in ethanol + water at 298.15 K

1998

Densities of ethanol + water + potassium nitrate and ethanol + water + sodium nitrate mixtures have been measured with an oscillating-tube densimeter over a large range of concentrations of the salt and ethanol, at 298.15 K. From these densities, apparent molar volumes of both electrolytes in ethanol + water mixtures have been calculated, and partial molar volumes at infinite dilution have been evaluated.

chemistry.chemical_classificationEthanolTernary numeral systemChemistryGeneral Chemical EngineeringInorganic chemistrySalt (chemistry)Potassium nitrateGeneral ChemistryElectrolyteDilutionchemistry.chemical_compoundMolar volumeSodium nitrate
researchProduct

Isobaric Vapor−Liquid Equilibrium for Ethanol + Water + Strontium Nitrate

1996

Isobaric vapor−liquid equilibrium for ethanol (1) + water (2) + potassium nitrate (3) at various concentrations of salt and with ethanol mole fractions from 0 to 0.642 has been measured at 100.0 kPa. The results were correlated by assuming that the salt was in ionic form and it was associated only with the water.

chemistry.chemical_compoundBoiling pointAqueous solutionchemistryVapor pressureSodium nitrateGeneral Chemical EngineeringStrontium nitrateInorganic chemistryVapor–liquid equilibriumIsobaric processPotassium nitrateGeneral ChemistryJournal of Chemical &amp; Engineering Data
researchProduct

On the Complexation of Cu(II) and Cd(II) With Polycarboxyl Ligands. Potentiometric Studies With ISE-H+, ISE-Cu2+, and ISE-Cd2+

2009

The interaction of Cu2+ and Cd2+ ions with polyacrylates (PAA, 2 kDa and 100 kDa), polymetacrylate(PMA, 5.4 kDa), and alginate (AA, 70 kDa to 100 kDa) was studied by potentiometry, using ISE-Cu2+, ISE-Cd2+, and ISE-H+ electrodes. The investigations were performed in NaNO3 aqueous solutions, in the ionic strength range 0.10 e I (mol ·L-1) e 0.75, at T ) 298.15 K. The “diprotic-like model” was used to explain the acid-base behavior of the polycarboxylates under investigation (for this model, the monomeric unit of the polyelectrolyte is considered as a dicarboxylate). The results give evidence for the formation of the ML species in all the systems investigated. In addition, the MLH species was…

inorganic chemicalsAcrylate polymerchemistry.chemical_classificationSequestering abilitypolycarboxylic acidsLigandGeneral Chemical EngineeringIonic strength dependencePotentiometric titrationInorganic chemistryGeneral ChemistryUronic acidComplexation Potentiometric study polyelectrolytesPolysaccharidePolyelectrolytechemistry.chemical_compoundchemistryIonic strengthSodium nitrateSettore CHIM/01 - Chimica Analiticapolycarboxylic acids; Sequestering ability; Ionic strength dependenceNuclear chemistryJournal of Chemical &amp; Engineering Data
researchProduct