0000000000267513

AUTHOR

Vera Serga

0000-0002-9421-0329

showing 16 related works from this author

Selective Disintegration–Milling to Obtain Metal-Rich Particle Fractions from E-Waste

2022

This research was supported by ERDF project no. 1.1.1.1/20/A/139 “Development of sustainable recycling technology of electronic scrap for precious and non-ferrous metals extraction”. The project was co-financed by REACT-EU funding to mitigate the effects of the pandemic crisis. The article was published with the financial support from the Riga Technical University Research Support Fund. This research was also supported by the Institute of Solid State Physics, University of Latvia as the Center of Excellence has received funding from the European Union’s Horizon 2020 Framework Program H2020-WIDESPREAD-01-2016-2017-TeamingPhase2 under grant agreement No. 739508, project CAMART2. The authors w…

disintegratione-wasteMetals and Alloysprecious metalsprinted circuit boards:NATURAL SCIENCES::Physics [Research Subject Categories]e-waste millingGeneral Materials Sciencedisintegration; e-waste; e-waste mechanical pretreatment; e-waste milling; precious metals; printed circuit boardse-waste mechanical pretreatmentMetals
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Production of Nano-Sized Co<sub>3</sub>O<sub>4</sub> by Pyrolysis of Organic Extracts

2016

The most promising application field of materials based on nano-sized Co3O4 is catalysis. The method of production is one of the factors, which greatly affects the catalytic activity of Co3O4 catalysts. The aim of this research is to study possibilities of a new promising extractive-pyrolytic method (EPM) for the production of Co3O4 nanopowders and silica- and ceria-supported Co3O4 nanocomposites. Solutions of cobalt hexanoate in hexanoic acid and trioctylammonium tetrachlorocobaltate in toluene preliminary produced by solvent extraction were used as precursors. The precursors’ thermal stability, phase composition, morphology and the magnetic properties of the final products of pyrolysis we…

010302 applied physicsHexanoic acidNanocompositeMaterials scienceMechanical EngineeringInorganic chemistrychemistry.chemical_element02 engineering and technology021001 nanoscience & nanotechnology01 natural sciencesTolueneCatalysischemistry.chemical_compoundChemical engineeringchemistryMechanics of Materials0103 physical sciencesGeneral Materials ScienceThermal stabilityCrystallite0210 nano-technologyCobaltPyrolysisKey Engineering Materials
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Cadmium Recovery from Spent Ni-Cd Batteries: A Brief Review

2021

The significant increase in the demand for efficient electric energy storage during the past decade has promoted an increase in the production and use of Cd-containing batteries. On the one hand, the amount of toxic Cd-containing used batteries is growing, while on the other hand, Cd is on a list of critical raw materials (for Europe). Both of these factors call for the development of effective technology for Cd recovery from spent batteries. The present paper is aimed at providing a short review of the recent progress in Cd recovery from spent batteries. Statistical data from the past decade on the source of Cd, its global production, and Ni-Cd battery recycling are given in the introducti…

Cadmiumpyro-metallurgyMining engineering. MetallurgyWaste managementBattery recyclingcadmiumMetals and Alloysbattery recyclingTN1-997chemistry.chemical_elementRaw materialNi-Cd batteriesrecoverychemistryEnvironmental scienceElectric energy storageGeneral Materials ScienceCd-containing batteriesResearch dataMetals
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Impact of gadolinium on the structure and magnetic properties of nanocrystalline powders of iron oxides produced by the extraction-pyrolytic method

2020

The work has been done in frame of the TransFerr project. It has received funding from the European Union’s Horizon 2020 research and innovation program under the Marie Sklodowska-Curie grant agreement No. 778070. This research was also supported by Latvian Research Council project lzp-2018/1-0214. A.I.P. appreciates support from the Estonian Research Council grant (PUT PRG619).

Gadolinium impactMaterials scienceiron oxidesValeric acidGadoliniumIron oxidechemistry.chemical_element02 engineering and technologyThermal treatmentCoercivitymagnetization010402 general chemistryValerateExtraction-pyrolitic methodIron oxidesMagnetizationlcsh:Technology7. Clean energy01 natural sciencesArticlechemistry.chemical_compoundnanostructures:NATURAL SCIENCES:Physics [Research Subject Categories]extraction–pyrolitic methodGeneral Materials Sciencecoercivitylcsh:Microscopylcsh:QC120-168.85chemistry.chemical_classificationlcsh:QH201-278.5lcsh:TExtraction (chemistry)gadolinium impact021001 nanoscience & nanotechnologyNanocrystalline materialNanostructures0104 chemical sciencesiron oxides ; nanostructures ; gadolinium impact ; extraction–pyrolitic method ; magnetization ; coercivitychemistrylcsh:TA1-2040Magnetic nanoparticleslcsh:Descriptive and experimental mechanicslcsh:Electrical engineering. Electronics. Nuclear engineeringlcsh:Engineering (General). Civil engineering (General)0210 nano-technologylcsh:TK1-9971Nuclear chemistry
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Electroslag process for better titanium deposition morphology

2018

Morphology (linguistics)Materials scienceMetallurgychemistry.chemical_elementKroll process02 engineering and technology021001 nanoscience & nanotechnology020501 mining & metallurgy0205 materials engineeringchemistryScientific methodDeposition (phase transition)0210 nano-technologyTitaniumIOP Conference Series: Materials Science and Engineering
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Extraction–Pyrolytic Method for TiO2 Polymorphs Production

2021

The authors thank V. Kuzovkov, A. Lushchik and M. Lushchik for many useful discussions. The research was (partly) performed in the Institute of Solid State Physics, University of Latvia ISSP UL. ISSP UL as the Center of Excellence is supported through the Framework Program for European universities Union Horizon 2020, H2020-WIDESPREAD-01–2016–2017-TeamingPhase2 under Grant Agreement No. 739508, CAMART2 project.

Thermogravimetric analysisAnataseMaterials scienceGeneral Chemical Engineeringchemistry.chemical_element02 engineering and technology010402 general chemistry01 natural sciencesInorganic Chemistrychemistry.chemical_compoundDifferential scanning calorimetry:NATURAL SCIENCES:Physics [Research Subject Categories]General Materials Scienceextraction–pyrolytic methodCrystallographytitanium dioxidePrecipitation (chemistry)polymorphs021001 nanoscience & nanotechnologyCondensed Matter PhysicsNanocrystalline material0104 chemical scienceschemistryChemical engineeringQD901-999RutileTitanium dioxideanataserutile0210 nano-technologyTitaniumCrystals
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Effect of gamma radiation on thermostimulated exoelectron emission from Gd2O3 films

2020

Abstract The effect of gamma irradiation on Gd2O3 films was studied using the thermostimulated exoelectron emission (TSEE) technique. The films were deposited on a glass and Si/SiO2 substrates using an extraction-pyrolytic method. Crystalline structure, chemical composition, film thickness and surface morphology were characterized by means of X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), scanning electron microscopy (SEM) and atomic force microscopy (AFM). The films were irradiated by 10 MeV gamma photons and TSEE was measured from the irradiated films. It was found that gamma irradiation decreases TSEE intensity and the area below TSEE spectral curves. A linear correlati…

DiffractionNuclear and High Energy PhysicsRange (particle radiation)Materials scienceX-ray photoelectron spectroscopyScanning electron microscopeAnalytical chemistryIrradiationElectronRadiationInstrumentationExoelectron emissionNuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
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Phase Composition and Morphology of Tungsten Oxide Nanoparticles Produced via a Pyrolytic Process

2018

The chemical synthesis is a leading route for the purposeful design of nanomaterials, whereas the tungsten oxides are employed in a variety of special applications. The production of nanomaterials by traditional synthetic methods is still a cumbersome multistep procedure. Here we propose an improved method to produce tungsten oxide nanoparticles via a pyrolytic process. A tungsten-containing precursor was prepared by liquid extraction using n-trioctylamine (C8H17)3N solution in toluene. We have shown that the conditions of thermal treatment of the W-based precursor determine the crystalline structure and nanomorphology of the final product. Monoclinic WO3 nanocrystallites are produced condu…

Materials scienceMorphology (linguistics)Mechanical EngineeringNanoparticleTungsten oxide02 engineering and technology010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences0104 chemical sciencesChemical engineeringMechanics of MaterialsPhase compositionScientific methodGeneral Materials SciencePyrolytic carbon0210 nano-technologyKey Engineering Materials
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Preparation and Characterization of Nanocrystalline Gadolinium Oxide Powders and Films

2020

Due to its magnetic, electrical, absorption, and emission properties, nanoscale gadolinium oxide is widely used in various fields. In this research, nanocrystalline Gd2O3 powders and films on glass substrates have been produced by the extraction-pyrolytic method. X-ray diffraction analysis revealed the formation of single phase Gd2O3 with cubic crystal structure and the mean crystallite size from 9 to 25 nm in all produced materials. The morphology of samples has been characterized by scanning electron microscopy and transmission electron microscopy.

010302 applied physicsMaterials scienceMorphology (linguistics)Mechanical Engineering02 engineering and technology021001 nanoscience & nanotechnology01 natural sciencesNanocrystalline materialCharacterization (materials science)Chemical engineeringMechanics of MaterialsLiquid–liquid extraction0103 physical sciencesGeneral Materials ScienceGadolinium oxide0210 nano-technologyPyrolysisKey Engineering Materials
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Catalyst activation of silica nano-based pore structure material for hydrogen storage

2011

Silica based composite material with palladium synthesized by extractive-pyrolytic method is used for hydrogen absorption-desorption experiments. The results obtained of the study on dynamic sorption experiments showed that Pyrex glass based composite sample reaches high hydrogen concentration in the material quite fast. Thought silica gel based composite material rapidly reaches 1/2 of hydrogen load but afterwards the amount of hydrogenation increases slowly. The overall amount of absorbed hydrogen for Pyrex glass based material exceeds the amount of absorbed hydrogen by silica gel based material approximately 5.6 times.

Materials scienceHydrogenSilica gelCryo-adsorptionInorganic chemistrychemistry.chemical_elementSorptionCatalysischemistry.chemical_compoundHydrogen storagechemistryChemical engineeringNano-PalladiumIOP Conference Series: Materials Science and Engineering
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Comparative study of the luminescence properties of macro- and nanocrystalline MgO using synchrotron radiation

2013

MgO nano-powder with an average crystallite size of nanoparticles ranging 10-15 nm was synthesized using the extractive-pyrolytic method and was studied by room temperature VUV spectroscopy under synchrotron radiation excitation. Comparative analysis of their luminescent properties with that of mac- rocrystalline powder analogues and an MgO single crystal, grown by the arc-fusion method, has been per- formed under excitation by pulsed VUV synchrotron radiation. Special attention was paid to VUV spectral range, which is not reachable with commonly used lamp and laser sources. A considerable blue shift of about 0.3 eV in the excitation spectra of 2.95 eV emission band, was revealed in nanocry…

010302 applied physicsNuclear and High Energy PhysicsMaterials scienceAnalytical chemistrySynchrotron radiation02 engineering and technology021001 nanoscience & nanotechnologyLaser01 natural sciencesNanocrystalline materiallaw.inventionlaw0103 physical sciencesddc:530Crystallite0210 nano-technologyLuminescenceSpectroscopyInstrumentationSingle crystalExcitationNuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
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Synthesis and properties of magnetic iron oxide/platinum nanocomposites

2015

Iron oxide/platinum nanocomposites have been synthesized by the extractive-pyrolytic method (EPM) involving gradual decomposition of iron capronate and n-trioctylammonium hexachloroplatinate initially produced by solvent extraction. The content of platinum in the composites was 1.2 wt%, 2.4 wt% and 4.8 wt%. Phase composition, morphology and magnetic properties of the produced materials were investigated. XRD analysis and magnetic measurements show that the magnetic phase (magnetite Fe3O4) dominates in a carrier sample produced by the pyrolysis of iron carboxylate, but hematite α-Fe2O3 exists there as an admixture. Referring to the TEM results, the produced composites contain ultra-disperse …

Materials scienceNanocompositeInorganic chemistryIron oxidechemistry.chemical_elementHematitechemistry.chemical_compoundchemistryvisual_artvisual_art.visual_art_mediumCarboxylateHexachloroplatinatePlatinumPyrolysisMagnetiteNuclear chemistryIOP Conference Series: Materials Science and Engineering
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STRUCTURE AND MAGNETIC PROPERTIES OF COBALT FERRITE PARTICLES PRODUCED BY METHOD OF PYROLYTIC SYNTHESIS

2008

ABSTRACT Magnetic fine particles of cobalt ferrite have been prepared by method of pyrolytic synthesis. X-ray diffraction confirmed the formation of single-phase cobalt ferrite nanoparticles in the range 6–50 nm. The size of the particles varies depending on matrix dispersity and mass content in the organic precursors. A large coercivity observed to be small for smaller single-domain particles due to superparamagnetic behavior.

DiffractionRange (particle radiation)Materials scienceBeta ferriteDispersityCoercivityCondensed Matter PhysicsElectronic Optical and Magnetic MaterialsMagnetic anisotropyNuclear magnetic resonanceChemical engineeringControl and Systems EngineeringMaterials ChemistryCeramics and CompositesPyrolytic carbonElectrical and Electronic EngineeringSuperparamagnetismIntegrated Ferroelectrics
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Study of phase composition, photocatalytic activity, and photoluminescence of TiO2 with Eu additive produced by the extraction-pyrolytic method

2021

The Institute of Solid State Physics, University of Latvia as the Center of Excellence has received funding from the H2020-WIDESPREAD-01-2016-2017-TeamingPhase2 under grant agreement No. 739508, project CAMART2. The work was also partially supported by the LZP grant 2020/2-0074. R. Burve has been supported by the project “Synthesis of nanostructured materials based on titanium dioxide and tin dioxide and investigation of their physicochemical properties” Nr. MP-2019/7, for strengthening scientific personnel capacity 2019/2020 at the Riga Technical University. Authors are grateful to Dr. K. Šmits for the microscopic measurements and SEM images.

AnataseThermogravimetric analysisPhotoluminescenceMaterials scienceEu3+Degradation of methylene blueNanocrystalline TiO202 engineering and technologyExtraction-pyrolytic method7. Clean energy01 natural sciencesBiomaterialschemistry.chemical_compoundDifferential scanning calorimetryPhase (matter)0103 physical sciencesPhotoluminescence010302 applied physicsMining engineering. MetallurgyMetals and AlloysTN1-997021001 nanoscience & nanotechnologyNanocrystalline materialSurfaces Coatings and FilmschemistryTitanium dioxideCeramics and CompositesPhotocatalysis:NATURAL SCIENCES [Research Subject Categories]0210 nano-technologyNuclear chemistryJournal of Materials Research and Technology
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Extractive-Pyrolytic Method for Au/MeO<sub>x</sub> Nanocomposites Production

2014

Au/MeOx(MeOx- SiO2, Al2O3and TiO2) nanocomposites have been produced by the extractive-pyrolytic method. An organic extract – a solution of n-trioctylammonium tetrachlorolaurate ([Oct3NH]AuCl4) in toluene – was used as a gold-containing precursor. The produced samples were analyzed by IR spectroscopy, X-ray diffraction and scanning electron microscopy. The performed studies have shown that the mean size of the metal crystallites vary within wide limits: on Al2O3from 60 nm to 35 nm; on SiO2from 33 nm to 23 nm; on TiO2from 50 nm to 13 nm.

DiffractionMaterials scienceNanocompositeScanning electron microscopeMechanical EngineeringAnalytical chemistryInfrared spectroscopyTolueneMetalchemistry.chemical_compoundchemistryMechanics of Materialsvisual_artvisual_art.visual_art_mediumGeneral Materials ScienceCrystallitePyrolytic carbonKey Engineering Materials
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Fabrication and characterization of magnetic FePt nanoparticles prepared by extraction–pyrolysis method

2018

We are grateful to Prof. E. Kotomin for useful discussions. The research leading to these results has received funding from the ERAF (2017) Project, while A. I. Popov thanks IMIS-2 for the funding support.

Materials scienceAlloyNanoparticleExtraction–pyrolysis methodGeneral ChemistryCoercivityHematiteengineering.material010402 general chemistry01 natural sciencesFe/Pt composition0104 chemical scienceschemistry.chemical_compoundTetragonal crystal systemCarbonyl ironFePt alloychemistryvisual_artPhase (matter)visual_art.visual_art_mediumengineering:NATURAL SCIENCES:Physics [Research Subject Categories]High magnetic coercivityHexachloroplatinateNuclear chemistry
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