Richard Dvorský
Technical University of Ostrava
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Featured researches published by Richard Dvorský.
Journal of Colloid and Interface Science | 2011
Petr Praus; Ondřej Kozák; Kamila Kočí; Aleš Panáček; Richard Dvorský
CdS nanoparticles were precipitated by the reaction of cadmium acetate with sodium sulphide in the presence of cetyltrimethylammonium (CTA) and deposited on montmorillonite (MMT). The resulting CdS-MMT nanocomposite contained 6 wt.% of CdS and 30 wt.% of CTA. Band-gap energy of CdS was estimated at 2.63±0.09 eV using the Tauc plot. The size of CdS nanoparticles was calculated from the band-gap energy at 5 nm and from the micrographs of transmission electron microscopy (TEM) at 5 nm. Selected area electron diffraction (SAED) recognized the cubic structure of CdS (Hawleite). The dynamic light scattering (DLS) method confirmed that CdS nanoparticles were anchored on the surface of MMT particles. CTA was found to be intercalated into MMT and adsorbed on its external surface. CdS-MMT was used for the photoreduction of carbon dioxide dissolved in NaOH solutions. The yields of originating gas products can be arranged in the order: H(2) ≫ CH(4) > CO. Amounts of these products were 4-8 folds higher then those obtained with TiO(2) Evonic P25. Hydrogen reduced CO(2) to CO and CH(4).
Journal of Colloid and Interface Science | 2012
Petr Praus; Richard Dvorský; Petra Horínková; Miroslav Pospíšil; Petr Kovář
ZnS nanoparticles were precipitated in aqueous dispersions of cationic surfactant cetyltrimethylammonium bromide (CTAB). The sphere radii of ZnS nanoparticles calculated by using band-gap energies steeply decreased from 4.5 nm to 2.2 nm within CTAB concentrations of 0.4-1.5 mmol L(-1). Above the concentration of 1.5 mmol L(-1), the radii were stabilized at R=2.0 nm and increased up to R=2.5 nm after 24 h. The hydrodynamic diameters of CTAB-ZnS structures observed by the dynamic light scattering (DLS) method ranged from 130 nm to 23 nm depending on CTAB concentrations of 0.5-1.5 mmol L(-1). The complex structures were observed by transmission electron microscopy (TEM). At the higher CTAB concentrations, ZnS nanoparticles were surrounded by CTA(+) bilayers forming positively charged micelles with the diameter of 10nm. The positive zeta-potentials of the micelles and their agglomerates were from 16 mV to 33 mV. Wurtzite and sphalerite nanoparticles with R=2.0 nm and 2.5 nm covered by CTA(+) were modeled with and without water. Calculated sublimation energies confirmed that a bilayer arrangement of CTA(+) on the ZnS nanoparticles was preferred to a monolayer.
Journal of The Serbian Chemical Society | 2014
Petr Kovář; Petr Praus; Miroslav Pospíšil; Richard Dvorský
ZnS nanoparticles stabilized by cetyltrimethylammonium bromide (CTAB) were modelled in the Materials Studio environment. Four types of models with different distances between ZnS nanoparticles and different amounts of CTA cations without water and in water environment were built and characterized by calculated sublimation energies. The results of molecular modelling without water showed that the most favourable model consisted of two ZnS nanoparticles with a distance of 8-9 nm separated without immersing of CTAs. On the contrary, the most favourable model in water environment was composed of ZnS nanoparticles that nearly touched each other. CTA cations exhibited tendency to be located on the ZnS surface forming sparse covers. Size distributions of ZnS-CTA particles obtained by TEM measurements well agreed with molecular modelling results.
Central European Journal of Chemistry | 2014
Petr Praus; Richard Dvorský; Petr Kovář; Ladislav Svoboda
AbstractZnS nanoparticles were precipitated in diluted aqueous solutions of zinc and sulphide ions without capping additives at a temperature interval of 0.5–20°C. ZnS nanoparticles were arranged in large flocs that were disaggregated into smaller agglomerates with hydrodynamic sizes of 70–150 nm depending on temperature. A linear relationship between hydrodynamic radius (Ra) and temperature (T) was theoretically derived as Ra =652 - 2.11 T.The radii of 1.9–2.2 nm of individual ZnS nanoparticles were calculated on the basis of gap energies estimated from their UV absorption spectra. Low zeta potentials of these dispersions of −5.0 mV to −6.3 mV did not depend on temperature. Interactions between individual ZnS nanoparticles were modelled in the Material Studio environment. Water molecules were found to stabilize ZnS nanoparticles via electrostatic interactions.
Materials Chemistry and Physics | 2013
Petr Praus; Martina Turicová; Martina Karlíková; Libor Kvítek; Richard Dvorský
Ceramics International | 2017
Petr Praus; Ladislav Svoboda; Richard Dvorský; Martin Reli; Martin Kormunda; Pavel Mančík
Materials Research Bulletin | 2013
Richard Dvorský; Jana Trojková; Petr Praus; Jiří Luňáček
Materials Research Bulletin | 2018
Ladislav Svoboda; Petr Praus; Maria J. Lima; Maria J. Sampaio; Dalibor Matýsek; Michal Ritz; Richard Dvorský; Joaquim L. Faria; Cláudia G. Silva
Ceramics International | 2018
Petr Praus; Ladislav Svoboda; Richard Dvorský; Martin Reli
Applied Surface Science | 2016
Ladislav Svoboda; Richard Dvorský; Petr Praus; Dalibor Matýsek; Jiří Bednář