0000000001301495

AUTHOR

Angela Möller

showing 27 related works from this author

Mechanical, thermal and electrical properties of monolayer and bilayer graded Al/SiC/rice husk ash (RHA) composite

2017

Abstract The mechanical, electrical and thermal properties as well as thermal expansion of Al/SiC/RHA (rice husk ash) monolayer and bilayer composite have been studied using the Taguchi method and analysis of variance (ANOVA). The parameter that most significantly affects the modulus of elasticity of Al/SiC/RHA bilayer composites is processing time, with contribution percentages of 68 and 27% calculated from stress-strain graphs and ultrasonic method, respectively. However, the factor which mostly affects bending strength, CTE value and electrical resistivity of composites is process temperature with contribution percentages of 32, 28, and 22%, respectively. The projected values for modulus…

Materials scienceMechanical EngineeringBilayerComposite numberMetals and AlloysYoung's modulus02 engineering and technology010402 general chemistry021001 nanoscience & nanotechnologyThermal diffusivity01 natural sciencesThermal expansion0104 chemical sciencessymbols.namesakeFlexural strengthMechanics of MaterialsElectrical resistivity and conductivityMonolayerMaterials ChemistrysymbolsComposite material0210 nano-technologyJournal of Alloys and Compounds
researchProduct

Thermal oxidation of the intermetallic phases Al 8 Mo 3 and AlMo 3

2017

Abstract The thermal oxidation reactions of the intermetallic phases Al8Mo3 and AlMo3 were investigated and analyzed by ex-situ powder-x-ray diffraction (XRD), difference thermal analysis (DTA), thermogravimetry (TGA), and infrared spectroscopy (IR). The initial oxidation reactions in air were found to yield Al2O3 and AlMo3 in the case of Al8Mo3 (Tonset =725 °C), and MoO3 as well as Al8−xMo3 (Tonset =435 °C) for the pure intermetallic phase AlMo3, respectively. Thus, both intermetallic phases are coexisting in an equilibrium within a temperature range of 300 °C under oxidizing conditions. The formation of β-Al2(MoO4)3 followed the second oxidizing process of the respective minority componen…

010302 applied physicsThermal oxidationMaterials scienceInorganic chemistryAnalytical chemistryIntermetallicInfrared spectroscopy02 engineering and technologyAtmospheric temperature range021001 nanoscience & nanotechnologyCondensed Matter Physics01 natural sciencesElectronic Optical and Magnetic MaterialsInorganic ChemistryThermogravimetryPhase (matter)0103 physical sciencesOxidizing agentMaterials ChemistryCeramics and CompositesPhysical and Theoretical Chemistry0210 nano-technologyThermal analysisJournal of Solid State Chemistry
researchProduct

Enhanced thermoelectric performance of chalcopyrite nanocomposite via co-milling of synthetic and natural minerals

2020

Chalcopyrite CuFeS2 was shown to be a promising thermoelectric material. Considering thermoelectric efficiency, its relatively high and temperature weakly dependent power factor, economic affordability and ecological benignity is counterbalanced by a high lattice thermal conductivity. Thus it is highly desirable to lower the thermal conductivity of chalcopyrite thermoelectric material without deterioration of other thermoelectric characteristics. In our study, we demonstrate that mechanosynthesis followed by appropriate sintering enables to prepare such nanostructured ceramics with a favourable thermoelectric response. Our study shows that mechanosynthesis is a low-cost technological route …

Materials sciencemechanochemieSintering02 engineering and technology010402 general chemistry01 natural scienceschalcopyritThermal conductivitytermoelektřinaThermoelectric effectnanocompositesGeneral Materials ScienceCeramicNanocompositeChalcopyriteMechanical Engineering021001 nanoscience & nanotechnologyCondensed Matter PhysicsThermoelectric materials0104 chemical scienceschalcopyritenanokompozityChemical engineeringMechanics of Materialsvisual_artvisual_art.visual_art_mediumMechanosynthesismechanochemistry0210 nano-technologythermoelectrics
researchProduct

Bilayer graded Al/B4C/rice husk ash composite: Wettability behavior, thermo-mechanical, and electrical properties

2018

In this study, wettability behavior of B4C substrate as well as B4C/crystalline rice husk ash and B4C/amorphous rice husk ash substrates with two aluminum alloys were studied. The electrical resistivity, thermal expansion coefficients, and thermal diffusivity of bilayer Al/B4C/rice husk ash composite fabricated by one-step pressureless infiltration were measured and the obtained data were systemically analyzed using the Taguchi method and analysis of variance. Boron carbide substrates after addition of amorphous or crystalline rice husk ash display good wettability with molten aluminum alloys. The results show that, electrical resistivity of Al/B4C/rice husk ash composites is mainly influe…

Materials scienceMechanical EngineeringBilayerComposite numberchemistry.chemical_element02 engineering and technologySubstrate (electronics)010402 general chemistry021001 nanoscience & nanotechnology01 natural sciencesHusk0104 chemical sciencesAmorphous solidchemistryMechanics of MaterialsAluminiumElectrical resistivity and conductivityMaterials ChemistryCeramics and CompositesWettingComposite material0210 nano-technologyJournal of Composite Materials
researchProduct

Phase Trapping in Multistep Spin Crossover Compound

2020

The dimeric motif is the smallest unit for two interacting spin centers allowing for systematic investigations of cooperative interactions. As spin transition compounds, dinuclear complexes are of particular interest, since they potentially reveal a two-step spin crossover (SCO), switching between the high spin-high spin [HS-HS], the high spin-low spin [HS-LS], and the low spin-low spin [LS-LS] states. Herein, we report the synthesis and characterization of six dinuclear iron(II) complexes [FeII2(μ2-L1)2](BF4)4 (C1), [FeII2(μ2-L1)2](ClO4)4 (C2), [FeII2(μ2-L1)2](F3CSO3)4 (C3), [FeII2(μ2-L2)2](BF4)4 (C4), [FeII2(μ2-L2)2](BF4)4 (C5), and [FeII2(μ2-L2)2](BF4)4 (C6), based on the 1,3,4-thiadiazo…

chemistry.chemical_classificationPhase transitionSpin states010405 organic chemistrySpin transitionTrapping010402 general chemistry01 natural sciences0104 chemical sciencesInorganic ChemistryCrystallographychemistrySpin crossoverMössbauer spectroscopyPhysical and Theoretical ChemistryCounterionInorganic Chemistry
researchProduct

Hydrothermal Synthesis, Crystal Structure, and Magnetism of Na 2 [Ir(OH) 6 ] and its Dehydration to Na 2 IrO 3

2021

Inorganic ChemistryMagnetizationCrystallographyMagnetismChemistrymedicineHydrothermal synthesisDehydrationCrystal structureThermal analysismedicine.diseaseZeitschrift für anorganische und allgemeine Chemie
researchProduct

Electrical and thermomechanical properties of CVI- Si3N4 porous rice husk ash infiltrated by Al-Mg-Si alloys

2017

Abstract The effect of following processing parameters on the electrical and thermomechanical properties of Al/Si3N4 deposited silica composites was investigated using the Taguchi method and analysis of variance (ANOVA): infiltration temperature and time, atmosphere, effect of Si3N4 coating, porosity content in the preforms, and magnesium content in the alloy. The contributions of each of the parameters to modulus of elasticity, electrical resistivity, coefficient of thermal expansion (CTE), and thermal diffusivity of the resulting composites were determined. The maximum modulus of elasticity and electrical resistivity of obtained composites were 265 GPa, and 1.37 × 10−3 Ω m, respectively. …

010302 applied physicsMaterials scienceMechanical EngineeringAlloyMetals and AlloysYoung's modulus02 engineering and technologyengineering.material021001 nanoscience & nanotechnologyThermal diffusivity01 natural sciencesThermal expansionsymbols.namesakeTaguchi methodsCoatingMechanics of MaterialsElectrical resistivity and conductivity0103 physical sciencesMaterials ChemistryengineeringsymbolsComposite material0210 nano-technologyPorosityJournal of Alloys and Compounds
researchProduct

Iron Oxide Superparticles with Enhanced MRI Performance by Solution Phase Epitaxial Growth

2018

Organized three-dimensional (3D) nanomaterial architectures are promising candidates for applications in optoelectronics, catalysis, or theranostics owing to their anisotropy and advanced structural features that allow tailoring their physical and chemical properties. The synthesis of such complex but well-organized nanomaterials is difficult because the interplay of interfacial strain and facet-specific reactivity must be considered. Especially the magnetic anisotropy with controlled size and morphology plays a decisive role for applications like magnetic resonance imaging (MRI) and advanced data storage. We present a solution phase seed mediated synthesis of colloidal, well dispersible ir…

Materials scienceGeneral Chemical EngineeringIron oxideMaghemiteNanotechnology02 engineering and technologyGeneral ChemistryHematiteengineering.material010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences0104 chemical sciencesNanomaterialschemistry.chemical_compoundMagnetic anisotropychemistryTransmission electron microscopyvisual_artMaterials Chemistryvisual_art.visual_art_mediumengineeringNanorod0210 nano-technologyAnisotropyChemistry of Materials
researchProduct

Second-order Raman scattering in CuO

2013

Polarized second-order Raman scattering spectra of CuO single crystals are reported. It is shown that for some scattering geometries the second-order processes dominate the inelastic light scattering spectra. Group-theoretical symmetry analysis of the selection rules for the first- and second-order scattering processes is performed and phonon dispersion relations are calculated within density functional theory. The main spectral features of the two-phonon spectra are assigned to overtones of the vibrational branches at various special points across the Brillouin zone.

Quasielastic scatteringCondensed matter physicsPhonon scatteringScatteringChemistryInelastic scatteringMott scatteringCondensed Matter PhysicsMolecular physicsLight scatteringX-ray Raman scatteringCondensed Matter::SuperconductivityGeneral Materials ScienceBiological small-angle scatteringJournal of Physics: Condensed Matter
researchProduct

Magnetic Resonance Study of the Spin-1/2 Quantum Magnet BaAg2Cu[VO4]2

2016

Abstract BaAg2Cu[VO4]2 contains Cu(II) S=1/2 ions on a distorted two-dimensional triangular lattice interconnected via non-magnetic [VO4] entities. DFT band structure calculations, quantum Monte-Carlo simulations, and high-field magnetization measurements show that the magnetism of this compound is determined by a superposition of ferromagnetic (FM) and antiferromagnetic (AFM) uniform spin-1/2 chains with nearest neighbor exchange couplings of J FM=−19 K and J AFM=9.5 K (A. Tsirlin, A. Möller, B. Lorenz, Y. Skourski, H. Rosner, Phys. Rev. B 85 (2012) 014401). Here we report the study of BaAg2Cu[VO4]2 by high-field/frequency electron spin resonance (HF-ESR) and nuclear magnetic resonance (NM…

Materials scienceCondensed matter physics02 engineering and technology021001 nanoscience & nanotechnology01 natural sciencesSpin chainMagnet0103 physical sciencesMagnetic resonance studyPhysical and Theoretical Chemistry010306 general physics0210 nano-technologyQuantumSpin-½Zeitschrift für Physikalische Chemie
researchProduct

From Single Molecules to Nanostructured Functional Materials: Formation of a Magnetic Foam Catalyzed by Pd@FexO Heterodimers

2017

Multicomponent nanostructures containing purely organic or inorganic as well as hybrid organic–inorganic components connected through a solid interface are, unlike conventional spherical particles, able to combine different or even incompatible properties within a single entity. They are multifunctional and resemble molecular amphiphiles, like surfactants or block copolymers, which makes them attractive for the self-assembly of complex structures, drug delivery, bioimaging, or catalysis. We have synthesized Pd@FexO heterodimer nanoparticles (NPs) to fabricate a macroporous, hydrophobic, magnetically active, three-dimensional (3D), and template-free hybrid foam capable of repeatedly separati…

NanostructureMaterials scienceHydrosilylationNucleationNanoparticleNanochemistry02 engineering and technology010402 general chemistry021001 nanoscience & nanotechnology01 natural sciencesNanomaterial-based catalyst0104 chemical scienceschemistry.chemical_compoundChemical engineeringchemistryAmphiphileGeneral Materials Science0210 nano-technologyHybrid materialACS Applied Nano Materials
researchProduct

The surface chemistry of iron oxide nanocrystals: surface reduction of γ-Fe2O3 to Fe3O4 by redox-active catechol surface ligands

2018

The effect of surface functionalization on the structural and magnetic properties of catechol-functionalized iron oxide magnetic (γ-Fe2O3) nanocrystals was investigated. γ-Fe2O3 nanocrystals (NCs) were synthesized from iron acetyl acetonate in phenyl ether with 1,2-tetradecanediol, oleic acid, and oleylamine. X-ray powder diffraction in combination with Mossbauer spectroscopy revealed the presence of γ-Fe2O3 (maghemite) particles only. Replacement of oleic acid (OA) with catechol-type 3,4-dihydroxyhydrocinnamic acid (DHCA) or polydentate polydopamine acrylate (PDAm) surface ligands leads to a pronounced change of the magnetic behavior of the γ-Fe2O3 nanocrystals and separated them into two …

Materials scienceInorganic chemistryIron oxideMaghemite02 engineering and technologyGeneral Chemistryengineering.material010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences0104 chemical scienceschemistry.chemical_compoundMagnetizationchemistryNanocrystalOleylamineMössbauer spectroscopyMaterials ChemistryengineeringSurface modification0210 nano-technologyMagnetiteJournal of Materials Chemistry C
researchProduct

Determining Magnetite/Maghemite Composition and Core–Shell Nanostructure from Magnetization Curve for Iron Oxide Nanoparticles

2018

Iron oxide magnetic nanoparticles produced by chemical synthesis are usually composed of both magnetite and maghemite phases. Information about the phase composition is typically obtained using Mos...

Materials scienceIron oxideMaghemite02 engineering and technologyengineering.material010402 general chemistry021001 nanoscience & nanotechnology01 natural sciencesChemical synthesis0104 chemical sciencesSurfaces Coatings and FilmsElectronic Optical and Magnetic Materialschemistry.chemical_compoundGeneral EnergychemistryChemical engineeringengineeringMagnetic nanoparticlesComposition (visual arts)Physical and Theoretical Chemistry0210 nano-technologyCore shell nanostructureIron oxide nanoparticlesMagnetiteThe Journal of Physical Chemistry C
researchProduct

Synthesis, crystal structures, magnetic properties, and lattice dynamics of Ba2XCu(OH)[V2O7] with X=Cl, Br

2016

Abstract We have synthesized Ba2XCu(OH)[V2O7] with X=Cl, Br by hydrothermal methods. The isotypic structures (Pnma, Z=4, a≈15.1 A, b≈6.1 A, c≈9.6 A) contain distorted hexagonal layers of Ba and X in a BN-type arrangement. Each halide is further coordinated by one out-of plane Ba atom in an alternate up-down fashion resulting in an overall Ba 2 X 3 + ∞ 2 structural feature. The planar Ba–X hexagonal rings are centered by divanadate groups in an eclipsed orientation. Edge-sharing chains of CuO 2/2 (OH) 2/2 O 2/1 5 - ∞ 1  complement the structure. The magnetic properties are associated with the magnetic Cu2+ ions and can be described as an antiferromagnetic quasi 1D S=1/2 Heisenberg system. Co…

Materials science010405 organic chemistryHalideCrystal structure010402 general chemistryCondensed Matter Physics01 natural sciencesHydrothermal circulation0104 chemical sciencesElectronic Optical and Magnetic MaterialsIonInorganic Chemistrysymbols.namesakeCrystallographyPlanarAtomMaterials ChemistryCeramics and CompositessymbolsAntiferromagnetismPhysical and Theoretical ChemistryRaman spectroscopyJournal of Solid State Chemistry
researchProduct

Pd@Fe2O3 Superparticles with Enhanced Peroxidase Activity by Solution Phase Epitaxial Growth

2017

Compared to conventional deposition techniques for the epitaxial growth of metal oxide structures on a bulk metal substrate, wet-chemical synthesis based on a dispersible template offers advantages such as low cost, high throughput, and the capability to prepare metal/metal oxide nanostructures with controllable size and morphology. However, the synthesis of such organized multicomponent architectures is difficult because the size and morphology of the components are dictated by the interplay of interfacial strain and facet-specific reactivity. Here we show that solution-processable two-dimensional Pd nanotetrahedra and nanoplates can be used to direct the epitaxial growth of γ-Fe2O3 nanoro…

NanostructureMaterials scienceGeneral Chemical EngineeringOxideNanotechnology02 engineering and technologyGeneral Chemistry010402 general chemistry021001 nanoscience & nanotechnologyEpitaxy01 natural sciences0104 chemical sciencesNanomaterialsMetalchemistry.chemical_compoundchemistryPhase (matter)visual_artMaterials Chemistryvisual_art.visual_art_mediumReactivity (chemistry)Nanorod0210 nano-technologyChemistry of Materials
researchProduct

FeMoO4 Revisited: Crosslike 90° Noncollinear Antiferromagnetic Structure Caused by Dzyaloshinskii–Moriya Interaction

2021

The ground state of Fe2+ (S = 2) in α- and β-FeMoO4 is investigated by experiments including X-ray diffraction, Raman scattering, and 57Fe–Mossbauer spectroscopy below 300 K and evaluated by theore...

DiffractionMaterials scienceCondensed matter physics02 engineering and technology010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences0104 chemical sciencesSurfaces Coatings and FilmsElectronic Optical and Magnetic Materialssymbols.namesakeGeneral EnergysymbolsAntiferromagnetismPhysical and Theoretical Chemistry0210 nano-technologyGround stateSpectroscopyRaman scatteringThe Journal of Physical Chemistry C
researchProduct

Reactivity and Structural Defects in Glaserite-Type Iron-Vanadates

2018

Chemistrychemistry.chemical_elementBarium02 engineering and technology010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences0104 chemical sciencesInorganic ChemistryCrystallographyMössbauer spectroscopyX-ray crystallographyReactivity (chemistry)0210 nano-technologyThermal analysisZeitschrift für anorganische und allgemeine Chemie
researchProduct

CCDC 1949845: Experimental Crystal Structure Determination

2020

Related Article: Fabian Fürmeyer, Luca M. Carrella, Vadim Ksenofontov, Angela Möller, Eva Rentschler|2020|Inorg.Chem.|59|2843|doi:10.1021/acs.inorgchem.9b03170

Space GroupCrystallographyCrystal SystemCrystal Structurebis(mu-25-bis{[(thiazol-2-ylmethyl)-amino]-methyl}-134-thiadiazole)-di-iron(ii) tetrakis(perchlorate) acetonitrile solvateCell ParametersExperimental 3D Coordinates
researchProduct

CCDC 1949842: Experimental Crystal Structure Determination

2020

Related Article: Fabian Fürmeyer, Luca M. Carrella, Vadim Ksenofontov, Angela Möller, Eva Rentschler|2020|Inorg.Chem.|59|2843|doi:10.1021/acs.inorgchem.9b03170

Space GroupCrystallographyCrystal SystemCrystal Structurebis(mu-25-bis{[(thiazol-2-ylmethyl)-amino]-methyl}-134-thiadiazole)-di-iron(ii) tetrakis(perchlorate) acetonitrile solvateCell ParametersExperimental 3D Coordinates
researchProduct

CCDC 1959867: Experimental Crystal Structure Determination

2020

Related Article: Fabian Fürmeyer, Luca M. Carrella, Vadim Ksenofontov, Angela Möller, Eva Rentschler|2020|Inorg.Chem.|59|2843|doi:10.1021/acs.inorgchem.9b03170

bis{mu-[1-(13-thiazol-2-yl)-N-{[5-({[(13-thiazol-2-yl)methyl]amino}methyl)-134-thiadiazol-2-yl]methyl}methanamine]}-di-iron(ii) tetrakis(tetrafluoroborate) acetonitrile solvateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
researchProduct

CCDC 1949843: Experimental Crystal Structure Determination

2020

Related Article: Fabian Fürmeyer, Luca M. Carrella, Vadim Ksenofontov, Angela Möller, Eva Rentschler|2020|Inorg.Chem.|59|2843|doi:10.1021/acs.inorgchem.9b03170

Space GroupCrystallographyCrystal SystemCrystal Structurebis(mu-25-bis{[(thiazol-2-ylmethyl)-amino]-methyl}-134-thiadiazole)-di-iron(ii) tetrakis(perchlorate) acetonitrile solvateCell ParametersExperimental 3D Coordinates
researchProduct

CCDC 1959865: Experimental Crystal Structure Determination

2020

Related Article: Fabian Fürmeyer, Luca M. Carrella, Vadim Ksenofontov, Angela Möller, Eva Rentschler|2020|Inorg.Chem.|59|2843|doi:10.1021/acs.inorgchem.9b03170

bis{mu-[1-(13-thiazol-2-yl)-N-{[5-({[(13-thiazol-2-yl)methyl]amino}methyl)-134-thiadiazol-2-yl]methyl}methanamine]}-di-iron(ii) tetrakis(tetrafluoroborate) acetonitrile solvateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
researchProduct

CCDC 1949841: Experimental Crystal Structure Determination

2020

Related Article: Fabian Fürmeyer, Luca M. Carrella, Vadim Ksenofontov, Angela Möller, Eva Rentschler|2020|Inorg.Chem.|59|2843|doi:10.1021/acs.inorgchem.9b03170

Space GroupCrystallographyCrystal SystemCrystal Structurebis(mu-25-bis{[(thiazol-2-ylmethyl)-amino]-methyl}-134-thiadiazole)-di-iron(ii) tetrakis(perchlorate) acetonitrile solvateCell ParametersExperimental 3D Coordinates
researchProduct

CSD 2047359: Experimental Crystal Structure Determination

2021

Related Article: Ralf Albrecht, Hagen Poddig, Jens Hunger, Michael Ruck, Philipp Benrath, Angela Möller, Thomas Doert|2021|Z.Anorg.Allg.Chem.|647|667|doi:10.1002/zaac.202000454

Space GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
researchProduct

CCDC 1959866: Experimental Crystal Structure Determination

2020

Related Article: Fabian Fürmeyer, Luca M. Carrella, Vadim Ksenofontov, Angela Möller, Eva Rentschler|2020|Inorg.Chem.|59|2843|doi:10.1021/acs.inorgchem.9b03170

Space GroupCrystallographybis{mu-[1-(13-thiazol-2-yl)-N-{[5-({[(13-thiazol-2-yl)methyl]amino}methyl)-134-thiadiazol-2-yl]methyl}methanamine]}-di-iron(ii) tetrakis(trifluoromethanesulfonate) acetonitrile solvateCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
researchProduct

CCDC 1959864: Experimental Crystal Structure Determination

2020

Related Article: Fabian Fürmeyer, Luca M. Carrella, Vadim Ksenofontov, Angela Möller, Eva Rentschler|2020|Inorg.Chem.|59|2843|doi:10.1021/acs.inorgchem.9b03170

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parametersbis(mu-NN'-[134-thiadiazole-25-diylbis(methylene)]bis[1-(1H-imidazol-2-yl)methanamine])-di-iron(ii) tetrakis(tetrafluoroborate) acetonitrile tetrahydrofuran solvateExperimental 3D Coordinates
researchProduct

CCDC 1949844: Experimental Crystal Structure Determination

2020

Related Article: Fabian Fürmeyer, Luca M. Carrella, Vadim Ksenofontov, Angela Möller, Eva Rentschler|2020|Inorg.Chem.|59|2843|doi:10.1021/acs.inorgchem.9b03170

Space GroupCrystallographyCrystal SystemCrystal Structurebis(mu-25-bis{[(thiazol-2-ylmethyl)-amino]-methyl}-134-thiadiazole)-di-iron(ii) tetrakis(perchlorate) acetonitrile solvateCell ParametersExperimental 3D Coordinates
researchProduct