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The Effect of Mn3+ Substitution on the Electric Field Gradient in a HoFe1−xMnxO3 (x = 0–0.7) System
Yuriy V. Knyazev, Maksim S. Pavlovskii, Timofei D. Balaev, Sergey V. Semenov, Stanislav A. Skorobogatov, Aleksey E. Sokolov, Denis M. Gokhfeld and Kirill A. Shaykhutdinov Crystals 14(12) 1025 (2024) https://doi.org/10.3390/cryst14121025
Fe ion valence states and oxygen vacancies in the La0.5Sr0.5FeO3-γ ferrite under vacuum annealing
V. Sedykh, V. Rusakov, O. Rybchenko, A. Gapochka, K. Gavrilicheva, O. Barkalov, S. Zaitsev and V. Kulakov Ceramics International 49(15) 25640 (2023) https://doi.org/10.1016/j.ceramint.2023.05.105
The Interrelation between Iron Valence and Oxygen Vacancies
in Substituted Orthoferrite La0.67Sr0.33FeO3–
during Heat Treatment
V. D. Sedykh, V. S. Rusakov, T. V. Gubaidulina, O. G. Rybchenko and V. I. Kulakov Физика металлов и металловедение 124(2) 161 (2023) https://doi.org/10.31857/S0015323022601465
The Interrelation between Iron Valence and Oxygen Vacancies in Substituted Orthoferrite La0.67Sr0.33FeO3 – γ during Heat Treatment
V. D. Sedykh, V. S. Rusakov, T. V. Gubaidulina, O. G. Rybchenko and V. I. Kulakov Physics of Metals and Metallography 124(2) 153 (2023) https://doi.org/10.1134/S0031918X22601950
The effect of ternary additions on the hyperfine interaction parameters at Fe nuclei in the Fe50Al50 compound: First-principles calculations
61Ni Nuclear Forward Scattering Study of Magnetic Hyperfine Interactions in Double Perovskites A2NiMnO6 (A = Sc, In, Tl)
Alexey V. Sobolev, Iana S. Glazkova, Alena A. Akulenko, et al. The Journal of Physical Chemistry C 123(38) 23628 (2019) https://doi.org/10.1021/acs.jpcc.9b06621
Curie Temperature Enhancement and Cation Ordering in Titanomagnetites: Evidence From Magnetic Properties, XMCD, and Mössbauer Spectroscopy
J. A. Bowles, S.‐C. L. L. Lappe, M. J. Jackson, E. Arenholz and G. van der Laan Geochemistry, Geophysics, Geosystems 20(5) 2272 (2019) https://doi.org/10.1029/2019GC008217
Magnetic Hyperfine Interactions in the Mixed-Valence Compound Fe7(PO4)6 from Mössbauer Experiments
Alexey V. Sobolev, Alena A. Akulenko, Iana S. Glazkova, et al. The Journal of Physical Chemistry C 122(34) 19767 (2018) https://doi.org/10.1021/acs.jpcc.8b05516
Modulated magnetic structure of
Fe3PO7
as seen by
Fe57
Mössbauer spectroscopy
Structure of the local environment and hyperfine interactions of 57Fe probe atoms in DyNiO3 nickelate
V. S. Rusakov, I. A. Presniakov, G. Demazeau, et al. Bulletin of the Russian Academy of Sciences: Physics 74(3) 335 (2010) https://doi.org/10.3103/S106287381003010X
Evidence through Mössbauer spectroscopy of two different states for57Fe probe atoms in RNiO3perovskites with intermediate-size rare earths, R = Sm,Eu,Gd,Dy
119Sn and 57Fe Mössbauer study of the local structure of perovskite-type ferrites CaFe2 − x N x O5 (N = Sc, Al) and manganite CaMn7O12
A. V. Sobolev, I. A. Presnyakov, K. V. Pokholok, et al. Bulletin of the Russian Academy of Sciences: Physics 71(9) 1314 (2007) https://doi.org/10.3103/S1062873807090274
Emission Mössbauer spectroscopy study of theFe3O4(100)surface andFe3O4/MgO(100)andFe3O4/CoO(100)interfaces
Structural Distortion and Chemical Bonding in TlFeO3: Comparison with AFeO3 (A=Rare Earth)
Seung-Joo Kim, Gérard Demazeau, Igor Presniakov and Jin-Ho Choy Journal of Solid State Chemistry 161(2) 197 (2001) https://doi.org/10.1006/jssc.2001.9292
Ordered magnetic frustration: XVII. Is BaMnFeF7 frustrated? Mössbauer spectroscopy, magnetic susceptibility, and magnetic structure at 2 K