Search results for "Elektrodi"

showing 10 items of 26 documents

Адсорбционные свойства диоксидномарганцевого электрода в водных растворах

1990

Advisor: Пурин, Бруно Андреевич ; Слайдинь, Гунар Янович ; Восекалнс, Александр Викторович

:NATURAL SCIENCES::Chemistry::Physical chemistry [Research Subject Categories]Manganese dioxide electrodesElektroķīmijaElektrodi mangāna dioksīdaMangāna dioksīda elektrodiДиоксидномарганцевые электродыФизическая химияElektrodi oksīduВодные растворыЭлектроды оксидныеЭлектрохимияАдсорбцияFizikālā ķīmijaElectrochemistryЭлектроды диоксид марганца
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Profesors Juris Miķelsons: biobibliogrāfiskais rādītājs

1997

Saturs: Priekšvārds. Profesors Juris Miķelsons / prof.Gunārs Sermons. Profesora Jura Miķelsona publicētie darbi (1964.-1997.) Profesore Jura Miķelsone sastādītie, rediģētie un recenzētie darbi. Profesora Jura Miķelsona autorapliecības. Profesora Jura Miķelsone recenzētās un oponētās disertācijas. Raksti par profesoru Juri Miķelsonu. Profesora Jura Miķelsona darbu alfabētiskais rādītājs. Personu rādītājs.

Biobibliogrāfiskie rādītājiMagnetohidrodinamika - bibliogrāfiskais rādītājsInformācijas tehnoloģijas - bibliogrāfiskais rādītājsProfessors of the Latvian UniversityHistory of the University of Latvia:NATURAL SCIENCES::Physics [Research Subject Categories]Fizikas zinātņu profesori Latvijas UnivesitātēLatvijas Universitātes vēstureLatvijas Universitātes profesoriElektrodinamika - bibliogrāfiskais rādītājsFizika - bibliogrāfiskais rādītājs
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Adiabatic versus non-adiabatic electron transfer at 2D electrode materials

2021

2D electrode materials are often deployed on conductive supports for electrochemistry and there is a great need to understand fundamental electrochemical processes in this electrode configuration. Here, an integrated experimental-theoretical approach is used to resolve the key electronic interactions in outer-sphere electron transfer (OS-ET), a cornerstone elementary electrochemical reaction, at graphene as-grown on a copper electrode. Using scanning electrochemical cell microscopy, and co-located structural microscopy, the classical hexaamineruthenium (III/II) couple shows the ET kinetics trend: monolayer > bilayer > multilayer graphene. This trend is rationalized quantitatively through th…

Computational chemistryMultidisciplinaryTKScienceQelektrodittiheysfunktionaaliteoriaGeneral Physics and Astronomy02 engineering and technologyGeneral Chemistry010402 general chemistry021001 nanoscience & nanotechnology01 natural sciencesGeneral Biochemistry Genetics and Molecular BiologyArticlesähkökemia0104 chemical sciencesCondensed Matter::Materials ScienceDensity functional theorygrafeeniQD0210 nano-technologyElectrocatalysisQC
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Zvaigžnotā Debess: 2007, Vasara

2007

Latvijas Zinātnes padome, Latvijas Universitāte

Krustvārdu mīklaMarsa robotmisija „Phoenix”„CoRoT” pirmā citplanētaZvaigžņotā debess 2007.gada vasarā„Zvaigžņotās Debess” lasītāju priekšlikumiAstronomija skolāBeļģu astronoms Eriks ElstsErnests Brastiņš – piemineklis Rīgas Ata Kronvalda parkāSupernovas apvalks Kasiopeja APirmās zvaigznesLatvijas atklātās matemātikas olimpiāde – uzdevumu atrisinājumiStarptautiskais Astronomijas gads 2009IAU Latvijas Nacionālā komiteja SAG2009 koordinators„Rosetta” – kosmiskā „biljarda bumba”7. Eiropas Simpozijs – Nakts debess aizsardzībaLatvijas Universitātes Astronomijas institūts – vēstureMarsa atmosfēras sastāvsMazā planēta „Vasks”Māris Ābele – 70Maiju Saules piramīdaAstronoma Staņislava Vasiļevska simtgadePasaules filosofu kongress DeliStarptautiskais heliofizikas gadsSaules aktivitāte – atbilde „ZvD” lasītājamStarptautiskās Astronomijas savienības 248. simpozijs ŠanhajāElektrodinamika un vakuumsMalina galaktikaVienādojuma xa+xb=1 saknes novērtējums
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Precipitation and Calcination of High-Capacity LiNiO2 Cathode Material for Lithium-Ion Batteries

2020

This article presents the electrochemical results that can be achieved for pure LiNiO2 cathode material prepared with a simple, low-cost, and efficient process. The results clarify the roles of the process parameters, precipitation temperature, and lithiation temperature in the performance of high-quality LiNiO2 cathode material. Ni(OH)2 with a spherical morphology was precipitated at different temperatures and mixed with LiOH to synthesize the LiNiO2 cathode material. The LiNiO2 calcination temperature was optimized to achieve a high initial discharge capacity of 231.7 mAh/g (0.1 C/2.6 V) with a first cycle efficiency of 91.3% and retaining a capacity of 135 mAh/g after 400 cycles. These a…

LNOcathodeMaterials scienceelektroditlitiumioniakutchemistry.chemical_elementlithium-ion battery02 engineering and technology010402 general chemistryElectrochemistrylcsh:Technology01 natural sciencesLithium-ion batteryIonlaw.inventionlcsh:Chemistrylithium nickel oxideCathode materiallawGeneral Materials ScienceCalcinationlcsh:QH301-705.5InstrumentationFluid Flow and Transfer Processeslcsh:TPrecipitation (chemistry)Process Chemistry and TechnologyGeneral Engineeringmateriaalit021001 nanoscience & nanotechnologysähkökemialcsh:QC1-999Cathode0104 chemical sciencesComputer Science Applicationslitiumlcsh:Biology (General)lcsh:QD1-999Chemical engineeringchemistrylcsh:TA1-2040oksiditLithiumnikkelilcsh:Engineering (General). Civil engineering (General)0210 nano-technologylcsh:PhysicsApplied Sciences
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Advances and challenges for experiment and theory for multi-electron multi-proton transfer at electrified solid-liquid interfaces.

2020

Multi-electron, multi-proton transfer is important in a wide spectrum of processes spanning biological, chemical and physical systems. These reactions have attracted significant interest due to both fundamental curiosity and potential applications in energy technology. In this Perspective Review, we shed light on modern aspects of electrode processes in the 21st century, in particular on the recent advances and challenges in multistep electron/proton transfers at solid–liquid interfaces. Ongoing developments of analytical techniques and operando spectrometry at electrode/electrolyte interfaces and reliable computational approaches to simulate complicated interfacial electrochemical reaction…

Materials scienceProcess (engineering)elektroditPhysical systemGeneral Physics and AstronomyNanotechnology02 engineering and technologyElectron010402 general chemistry021001 nanoscience & nanotechnologyEnergy technology01 natural sciencespintakemiasähkökemia0104 chemical scienceselectrified solid–liquid interfacesProton (rocket family)multi-electron multi-proton transferPhysical and Theoretical Chemistry0210 nano-technologySolid liquidPhysical chemistry chemical physics : PCCP
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Preparation of Highly Porous Carbonous Electrodes by Selective Laser Sintering

2019

Selective laser sintering (SLS) 3D printing was utilized to fabricate highly porous carbonous electrodes. The electrodes were prepared by using a mixture of fine graphite powder and either polyamide-12, polystyrene, or polyurethane polymer powder as SLS printing material. During the printing process the graphite powder was dispersed uniformly on the supporting polymer matrix. Graphite’s concentration in the mixture was varied between 5 and 40 wt % to find the correlation between the carbon content and conductivity. The graphite concentration, polymer matrix, and printing conditions all had an impact on the final conductivity. Due to the SLS printing technique, all the 3D printed electrodes …

Materials sciencelaser sinteringelektroditEnergy Engineering and Power Technology3D printing02 engineering and technologyConductivity010402 general chemistry01 natural scienceslaw.inventionlawHighly porousgrafiittiMaterials ChemistryElectrochemistryChemical Engineering (miscellaneous)3D-tulostusGraphiteElectrical and Electronic EngineeringComposite materialta116ta114business.industrygraphite3D printingporous electrodes021001 nanoscience & nanotechnology0104 chemical sciencesSelective laser sinteringPorous electrodeElectrodePolyamideconductivity0210 nano-technologybusinessACS Applied Energy Materials
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Activated Cashew Carbon-Manganese Oxide Based Electrodes for Supercapacitor Applications

2023

The current global energy challenge which affects most developing countries in particular, is of major source of concern today. The availability of less expensive techniques of storing excess generated energy is critical to the success of the renewable energy roadmaps implementation. In this study, hydrothermal and chemical leaching methods have been used to synthesize MnO2 nanoparticles using KMnO4 and MnSO4 as precursors at 140 °C and from natural local manganese ore. Activated Carbon (ACF) have also been produced from agricultural Cashew biomass waste, through a physical carbonization and KOH activation process using temperatures of 700 °C – 900 °C for periods between 1-2 hours. The as-p…

Multidisciplinaryelectrochemistrymaatalousjätteetaktiivihiilisuperkondensaattoritelektroditactivated carboncharacterizationsupercapacitorbiomassa (teollisuus)agrowastesähkökemia
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Вопросы электродинамики и механики сплошных сред. Выпуск 2

1976

Nepārtrauktās vides mehānikaElektromagnētiskais lauksElektrodinamika
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Carbon nanotube field-effect devices with asymmetric electrode configuration by contact geometry

2014

We have studied experimentally the conductive properties of single walled carbon nanotube (SWNT) based field-effect type devices, with different contact geometries at the connecting electrode. The device designs are asymmetric with one end of the SWNT having the metal electrode deposited on top and immersing it, while at the other end, the SWNT is on top of the electrode. The devices were made with either gold or palladium as electrode materials, of which the latter resulted in different behavior of the different contact types. This is argued to be caused by the existence of a thin insulating layer of surface adsorbents on the palladium, possibly Pd5O4, the effect of which is enhanced by th…

Working electrodeMaterials scienceta114oxidationhiilinanoputketContact geometryelektroditohmic contactsGeneral Physics and Astronomychemistry.chemical_elementField effectNanotechnologyCarbon nanotubepalladiumkultalaw.inventionhappichemistrylawPalladium-hydrogen electrodeElectrodeComposite materialContact areata116PalladiumJournal of Applied Physics
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