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Dive into the research topics where I. Sosnowska is active.

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Featured researches published by I. Sosnowska.


Acta Crystallographica Section B-structural Science | 2007

Atomic displacements in BiFeO3 as a function of temperature: neutron diffraction study

Andrzej Palewicz; R. Przeniosło; I. Sosnowska; A. Hewat

The parameters of the crystal structure of BiFeO(3), described within the space group R3c, have been determined by high-resolution neutron powder diffraction for temperatures from 293 to 923 K. It was found that there is a local minimum for the rhombohedral angle alpha(rh), near the Néel temperature T(N) approximately 640 K, a gradual rotation of the FeO(6) octahedra and an increase of the Fe-O-Fe angle. The displacement of the Bi(3+) ions from the FeO(6) octahedra which influence the electric polarization decreases with temperature. One of the Bi-Fe distances also has a local maximum near T(N). The atomic vibrations of Bi(3+) and O(2-) ions show a significant anisotropy.


Journal of Magnetism and Magnetic Materials | 1996

Neutron diffraction studies of the crystal and magnetic structures of BiFeO3 and Bi0.93La0.07FeO3

I. Sosnowska; R. Przeniosło; Peter Fischer; V.A. Murashov

Abstract Polycrystalline materials obtained from the around single crystals of BiFe03 and Bi0.93La0.07Fe03, reported as not having superstructure, show superstructure reflections in X-rays and neutron diffraction patterns. The determined magnetic moment of antiferromagnetically ordered Fe3+ ions is μFe = (3.70 ± 0.03)μBand μFe = (3.79 ± 0.03)μB for BiFe03 and Bi0.93La0.07Fe03, respectively.


Physica B-condensed Matter | 1992

Investigation of the unusual magnetic spiral arrangement in BiFeO3

I. Sosnowska; M. Loewenhaupt; William I. F. David; Richard M. Ibberson

Abstract In the ferroelectric-antiferromagnet, BiFeO3, the cycloidal spiral arrangement of the magnetic moments of the Fe3+ ions whose length is 620 A was confirmed. This magnetic ordering remains up to the Neel temperature (643K).


Journal of Magnetism and Magnetic Materials | 1995

Origin of the long period magnetic ordering in BiFeO3

I. Sosnowska; A. K. Zvezdin

Abstract The ferroelectric-antiferromagnet BiFeO3 shows long period modulated magnetic structure with λ = 620 A . The origin of this spatially modulated structure can be explained in terms of existence of relativistic Lifshitz invariants. By minimizing the free energy of the crystal and taking the Lifshitz invariants into account the spatially modulated spin structure (SMSS) is described.


Journal of Physics and Chemistry of Solids | 1976

The motions of hydrogen impurities in α-Palladium-hydride

W. Drexel; A. Murani; D. Tocchetti; W. Kley; I. Sosnowska; D.K. Ross

Abstract The intensity distribution of inelastically scattered thermal and hot neutrons on hydrogen impurities in α-palladium hydride has been studied as a function of concentration, temperature, momentum transfer and different annealing procedures. In up-scattering experiments the first and second harmonics appear at E 1 H = (66 ± 4) me V and E 2 H = (135 ± 15) meV respectively, and the hydrogen band modes have a frequency distribution as expected from measured dispersion curves for pure palladium. For deuterium the first harmonic appears at E 1 D = (48 ± 4) meV. The width of the hydrogen local mode E 1 H changes from 30 to 20 me V and its position from 63 to 66 meV, when the hydrogen concentration is altered from 2.7 to 0.2 at.%. After an extended annealing procedure and at the lowest concentration of 0.2 at.%, the local mode appears in down-scattering experiments at E 1 H = (68.5 ± 2) meV with a full width at half height ΔE 1 H = 4 meV , which is purely instrumental. For higher concentrations and insufficient annealing of the sample, cluster of hydrogen atoms are formed even in the α-phase, as indicated by the increasing width of the local mode. The peak intensity of the E 1 H mode decreases upon changing the temperature from 423 to 673°K. Upon changing the direction of the k -vector from the [1,0,0]- to the [1,1,0]-direction, the peak intensity of the local mode decreases by a factor of ten. These observations indicate the existence of anhannonic effects along the [l,l,0]-direction.


Journal of Physics: Condensed Matter | 2006

Does the modulated magnetic structure of BiFeO3 change at low temperatures

R. Przeniosło; A Palewicz; Michael Regulski; I. Sosnowska; Richard M. Ibberson; Kevin S. Knight

Figure 2 and its caption were incorrect, along with a line of the text. Full details can be found in the PDF; these corrections do not change the conclusions of the paper.


Journal of Physics: Condensed Matter | 2005

Spin reorientation and structural changes in NdFeO3

W. Sławiński; R. Przeniosło; I. Sosnowska; E Suard

The crystal structure and the Fe3+ magnetic moment ordering in NdFeO3 have been studied by high-resolution neutron powder diffraction at temperatures ranging from 1.5 to 300 K. Between 100 and 200 K a spin reorientation transition is observed with gradual changes of the directions of the Fe3+ ordered magnetic moments. The spin reorientation temperature range is associated with changes of the crystal structure. The b lattice parameter has a broad local minimum in the spin reorientation region. There is also a coherent rotation of the FeO6 octahedra with an increase of the Fe–O–Fe angles with increasing temperature. These structural changes tend to increase the strength of the in-plane (a,b) Fe–Fe interactions and to decrease the strength of Fe–Fe interactions along the c-axis as the temperature increases. The Fe3+ magnetic moment ordering above 200 K is close to the antiferromagnetic Gx type. The total Fe3+ ordered magnetic moment at room temperature equals 3.87(5) μB. Below 100 K the Fe3+ magnetic moment ordering is a combination of the antiferromagnetic Gx and Gz type. The ordered Fe3+ magnetic moment components at 1.5 K are Mx = 1.30(15) μB and Mz = 3.97(5) µB. There is a C-type antiferromagnetic ordering of the Nd3+ magnetic moments at 1.5 K with the ordered Nd3+ moment value of 1.10(7) μB.


Journal of Alloys and Compounds | 2004

Neutron diffraction study of the magnetic structure of α-Mn2O3

M. Regulski; R. Przeniosło; I. Sosnowska; D. Hohlwein; R. Schneider

The magnetic ordering of α-Mn2O3 has been studied by neutron powder diffraction measurements. An antiferromagnetic ordering occurs with the magnetic unit cell equivalent to the crystalline unit cell. Our results are compared with the results of previous works. The main antiferromagnetic Bragg peaks have different temperature dependence of their intensities, suggesting that the magnetic ordering in α-Mn2O3 cannot be described by a single order parameter. The temperature dependence of magnetization near 0 K for these peaks differs from Bloch’s T3/2 law. The majority of the magnetic peaks disappear at 80 K, which was reported earlier as the Neel temperature. The (100) peak, forbidden in the crystal structure of α-Mn2O3 is present up to 100 K. A new collinear model of the magnetic ordering of α-Mn2O3 at 10 K is presented.


Inorganic Chemistry | 2013

Crystal and Magnetic Structure in Co-Substituted BiFeO3

I. Sosnowska; Masaki Azuma; R. Przeniosło; Dariusz Wardecki; Wei-tin Chen; Kengo Oka; Yuichi Shimakawa

Ultra-high-resolution neutron diffraction studies of BiFe(0.8)Co(0.2)O3 show a transition from a cycloidal space modulated spin structure at T = 10 K to a collinear G-type antiferromagnetic structure at T = 120 K. The model of antiparallel directions of Fe(3+) and Co(3+) magnetic moments at the shared Wyckoff position describes well the observed neutron diffraction intensities. On heating above RT, the crystal structure of BiFe(0.8)Co(0.2)O3 changes from a rhombohedral R3c to a monoclinic Cm. At 573 K only the Cm phase is present. The collinear C-type antiferromagnetic structure is present in the Cm phase of BiFe(0.8)Co(0.2)O3 at RT after annealing.


Journal of Physics: Condensed Matter | 2002

Phase coexistence in the charge ordering transition in CaMn7O12

R. Przeniosło; I. Sosnowska; E Suard; A Hewat; Andy N. Fitch

The structural phase transition in CaMn7O12 has been investigated by using high-resolution synchrotron and neutron powder diffraction. Both measurements show a phase coexistence phenomenon: between 409 and 448 K two different crystallographic phases coexist in the material. The first one is trigonal and it has a charge ordering (CO) of the Mn3+ and Mn4+ ions, while the second one is cubic and charge delocalized (CD). The volume fraction of the CD phase increases with temperature from zero at 400 K up to 100% about 460 K. Both phases have domains of at least 150 nm at each temperature in the PS region. A percolation scenario assuming a growth of the volume of the highly conducting CD regions at the expense of the volume of the insulating CO matrix is discussed and it is found to be in agreement with literature data of the CaMn7O12 resistivity.

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Peter Fischer

University of Nottingham

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Andy N. Fitch

European Synchrotron Radiation Facility

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Makoto Shiojiri

Kyoto Institute of Technology

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Emmanuelle Suard

Centre national de la recherche scientifique

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