Search results for "Reverse Monte Carlo"

showing 10 items of 32 documents

Evidence of nickel ions dimerization in NiWO$_4$ and NiWO$_4$-ZnWO$_4$ solid solutions probed by EXAFS spectroscopy and reverse Monte Carlo simulatio…

2021

G.B. acknowledges the financial support provided by the State Education Development Agency for project No.1.1.1.2/VIAA/3/19/444 (agreement No. 1.1.1.2/16/I/001) realized at the Institute of Solid State Physics, University of Latvia. A.K. and A.K. would like to thank the support of the Latvian Council of Science project No. lzp-2019/1-0071. Institute of Solid State Physics, University of Latvia as the Center of Excellence has received funding from the European Union’s Horizon 2020 Framework Programme H2020-WIDESPREAD-01-2016-2017-TeamingPhase2 under grant agreement No. 739508, project CAMART2.

Condensed Matter - Materials ScienceEXAFSNiWO4solid solutions:NATURAL SCIENCES:Physics [Research Subject Categories]Materials Science (cond-mat.mtrl-sci)FOS: Physical sciencesZnWO4antiferromagnetsreverse Monte Carlo
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Peculiarities of the local structure in new medium- and high-entropy, low-symmetry tungstates

2022

G. Bakradze acknowledges financial support provided by the Latvian Council of Science for project no. 1.1.1.2/VIAA/3/19/444 (agreement no. 1.1.1.2/16/I/001) realized at the Institute of Solid State Physics, University of Latvia. The Institute of Solid State Physics, University of Latvia, as a centre of excellence, has received funding from the European Union’s Horizon 2020 Framework Programme H2020-WIDESPREAD-01-2016-2017-TeamingPhase2 under grant agreement no. 739508, project CAMART2.

Condensed Matter - Materials ScienceHigh-entropy oxidesMaterials Science (cond-mat.mtrl-sci)FOS: Physical sciences:NATURAL SCIENCES::Physics [Research Subject Categories]TungstatesGeneral ChemistryCondensed Matter Physics540ddc:540Reverse Monte Carlo methodGeneral Materials ScienceSolid solutionsExtended X-ray absorption fine structure
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In Situ Study of Zinc Peroxide Decomposition to Zinc Oxide by X‐Ray Absorption Spectroscopy and Reverse Monte Carlo Simulations

2022

The authors wish to thank Dr. R. Kalendarev for the synthesis of ZnO2 sample. A.K. would like to thank the financial support of the ERDF Project No. 1.1.1.1/20/A/060. The experiment at the MAX IV synchrotron was performed within the project 20190823. Institute of Solid State Physics, University of Latvia as the Center of Excellence has received funding from the European Union's Horizon 2020 Framework Programme H2020-WIDESPREAD-01-2016-2017-TeamingPhase2 under grant agreement No. 739508, project CAMART2.

Condensed Matter - Materials Sciencereverse Monte Carlo methodX-ray absorption spectroscopyMaterials Science (cond-mat.mtrl-sci)FOS: Physical sciences:NATURAL SCIENCES::Physics [Research Subject Categories]Condensed Matter PhysicsElectronic Optical and Magnetic MaterialsEXAFSCondensed Matter::Materials Sciencephase transitionZnOPhysics::Atomic and Molecular ClustersZnO2physica status solidi (b)
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Local structure of A-atom in ABO3 perovskites studies by RMC-EXAFS

2020

The measurements of Sr K-edge XAFS were performed under the approval of Proposal No. 97G042 of Photon Factory (KEK) and partially supported by the Research Grants of Hirosaki University. This work was supported by Bruce Ravel providing data for BTO. Boby Joseph acknowledges IISc Bangalore and ICTP Trieste for financial support through the award of the IISc-ICTP fellowship.

Correlation effectsDiffractionX-ray absorption spectroscopyRadiationMaterials scienceExtended X-ray absorption fine structureAbsorption spectroscopy010308 nuclear & particles physicsReverse Monte CarloExtended X-ray absorption fine structure (EXAFS)01 natural sciencesMolecular physicsSpectral line030218 nuclear medicine & medical imagingCondensed Matter::Materials Science03 medical and health sciences0302 clinical medicine0103 physical sciencesAtom:NATURAL SCIENCES:Physics [Research Subject Categories]PerovskitesReverse Monte CarloSpectroscopyX-ray absorption near edge structure (XANES)Radiation Physics and Chemistry
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EXAFS study of the local structure of crystalline and nanocrystalline Y2O3using evolutionary algorithm method

2015

Temperature-dependent local structure and lattice dynamics of yttria (Y2O3) were studied by X-ray absorption spectroscopy. Novel method, which combines the reverse Monte Carlo and evolutionary algorithm techniques, was applied for the analysis of extended X-ray absorption fine structure at the Y K-edge. This approach allowed us to reconstruct 3D atomic structure models of crystalline and nanocrystalline Y2O3.

CrystallographyMaterials scienceAbsorption spectroscopyExtended X-ray absorption fine structureChemical physicsEvolutionary algorithmReverse Monte CarloAbsorption (electromagnetic radiation)Local structureYttria-stabilized zirconiaNanocrystalline materialIOP Conference Series: Materials Science and Engineering
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Atomistic simulations of the FeK-edge EXAFS in FeF3using molecular dynamics and reverse Monte Carlo methods

2016

Atomistic simulations of the experimental Fe K-edge extended x-ray absorption fine structure (EXAFS) of rhombohedral (space group ) FeF3 at T = 300 K were performed using classical molecular dynamics and reverse Monte Carlo (RMC) methods. The use of two complementary theoretical approaches allowed us to account accurately for thermal disorder effects in EXAFS and to validate the developed force-field model, which was constructed as a sum of two-body Buckingham-type (Fe–F and F–F), three-body harmonic (Fe–F–Fe) and Coulomb potentials. We found that the shape of the Fe K-edge EXAFS spectrum of FeF3 is a more sensitive probe for the determination of potential parameters than the values of stru…

DiffractionMaterials scienceExtended X-ray absorption fine structureAb initio02 engineering and technologyReverse Monte Carlo010402 general chemistry021001 nanoscience & nanotechnologyCondensed Matter Physics01 natural sciencesAtomic and Molecular Physics and OpticsSpectral lineEffective nuclear charge0104 chemical sciencesCondensed Matter::Materials ScienceMolecular dynamicsK-edgeAtomic physics0210 nano-technologyMathematical PhysicsPhysica Scripta
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Pattern Formation Kinetics for Charged Molecules on Surfaces: Microscopic Correlation Function Analysis

2011

The kinetics of pattern formation and phase separation in a system of two types of oppositely charged molecules with competing short- and long-range interactions on surfaces/interfaces is studied combining three methods: a microscopic formalism of the joint correlation functions, reverse Monte Carlo, and nonequilibrium charge-screening factors. The molecular ordering occurs on the background of the Ostwald ripening and thus is strongly nonequilibrium. We have demonstrated how initial random distribution of molecules is changed for loose similar-molecule aggregates, with further reorganization into dense macroscopic domains of oppositely charged molecules. Pattern formation process is charac…

IonsModels MolecularOstwald ripeningChemistryKineticsMonte Carlo methodNon-equilibrium thermodynamicsPattern formationReverse Monte CarloSurfaces Coatings and FilmsKineticsCorrelation function (statistical mechanics)symbols.namesakeCrystallographyChemical physicsMaterials ChemistrysymbolsMoleculePhysical and Theoretical ChemistryMonte Carlo MethodThe Journal of Physical Chemistry B
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EXAFS study of hydrogen intercalation into ReO 3 using the evolutionary algorithm.

2014

In this study we have investigated the influence of hydrogen intercalation on the local atomic structure of rhenium trioxide using a new approach to EXAFS data analysis, based on the evolutionary algorithm (EA). The proposed EA-EXAFS method is an extension of the conventional reverse Monte Carlo approach but is computationally more efficient. It allows one to perform accurate analysis of EXAFS data from distant coordination shells, taking into account both multiple-scattering and disorder (thermal and static) effects. The power of the EA-EXAFS method is first demonstrated on an example of the model system, pure ReO3, and then it is applied to an in situ study of hydrogen bronze HxReO3 upon …

Lattice dynamicsExtended X-ray absorption fine structureHydrogenIntercalation (chemistry)Analytical chemistryEvolutionary algorithmchemistry.chemical_elementReverse Monte CarloCondensed Matter PhysicsCondensed Matter::Materials Sciencechemistry.chemical_compoundRhenium trioxidechemistryChemical physicsCondensed Matter::SuperconductivityThermalGeneral Materials ScienceJournal of physics. Condensed matter : an Institute of Physics journal
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Temperature-dependent EXAFS study of the local structure and lattice dynamics in cubic Y2O3

2016

The local structure and lattice dynamics in cubic Y2O3were studied at the YK-edge by X-ray absorption spectroscopy in the temperature range from 300 to 1273 K. The temperature dependence of the extended X-ray absorption fine structure was successfully interpreted using classical molecular dynamics and a novel reverse Monte Carlo method, coupled with the evolutionary algorithm. The obtained results allowed the temperature dependence of the yttria atomic structure to be followed up to ∼6 Å and to validate two force-field models.

Lattice dynamicsNuclear and High Energy PhysicsRadiationMaterials scienceAbsorption spectroscopyExtended X-ray absorption fine structure02 engineering and technologyReverse Monte CarloAtmospheric temperature range021001 nanoscience & nanotechnology01 natural sciencesMolecular physicsMolecular dynamics0103 physical sciences010306 general physics0210 nano-technologyAbsorption (electromagnetic radiation)InstrumentationYttria-stabilized zirconiaJournal of Synchrotron Radiation
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Treatment of disorder effects in X-ray absorption spectra beyond the conventional approach

2020

The contribution of static and thermal disorder is one of the largest challenges for the accurate determination of the atomic structure from the extended X-ray absorption fine structure (EXAFS). Although there are a number of generally accepted approaches to solve this problem, which are widely used in the EXAFS data analysis, they often provide less accurate results when applied to outer coordination shells around the absorbing atom. In this case, the advanced techniques based on the molecular dynamics and reverse Monte Carlo simulations are known to be more appropriate: their strengths and weaknesses are reviewed here.

Materials scienceAbsorption spectroscopyFOS: Physical sciencesReverse Monte CarloMolecular dynamicsExtended X-ray absorption fine structure (EXAFS)01 natural sciences030218 nuclear medicine & medical imaging03 medical and health sciencesMolecular dynamics0302 clinical medicineStatic and thermal disorder0103 physical sciencesAtomThermal:NATURAL SCIENCES:Physics [Research Subject Categories]Reverse Monte CarloAbsorption (electromagnetic radiation)Condensed Matter - Materials ScienceRadiationExtended X-ray absorption fine structure010308 nuclear & particles physicsX-rayMaterials Science (cond-mat.mtrl-sci)Computational physicsX-ray absorption spectrocopyRadiation Physics and Chemistry
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