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Pis'ma v Zh. Èksper. Teoret. Fiz., 2010, Volume 91, Issue 3, Pages 158–165 (Mi jetpl647)  

This article is cited in 7 scientific papers (total in 7 papers)

CONDENSED MATTER

Magnetic and ferroelectric properties of exchange-frustrated multiferroics (Ni1 − xTx)3V2O8 (T = Co, Mn, Zn)

A. A. Mukhina, V. Yu. Ivanova, A. M. Kuz'menkoa, A. S. Prokhorova, A. A. Pronina, S. N. Barilob, G. L. Bychkovb, S. V. Shiryaevb

a General Physics Institute named after A. M. Prokhorov, Russian Academy of Sciences
b Institute of Solid State Physics and Semiconductors NASB

Abstract: The effect of the substitution of Co2+, Mn2+, and Zn2+ ions for Ni2+ ions on the magnetic, dielectric, and ferroelectric properties of vanadate single crystals (Ni1 − x T x )3V2O8 has been analyzed. It has been found that the low-level (x ≤ 0.1) substitution of both magnetic and nonmagnetic ions stabilizes the ferroelectric state with a cycloidal magnetic structure. The existence region of this state is expanded to low temperatures down to 3 K for Zn2+ and below 1.8 K for Co2+ and Mn2+ owing to the suppression of a low-temperature weak ferromagnetic phase. At the same time, the ferroelectric phase disappears completely at large concentrations of Co and Mn. The effect of magnetic fields on the magnetic and ferroelectric states has been analyzed. It has been shown that the magnetic field along the c axis suppresses the ferroelectric state, whereas the magnetization along the antiferromagnetism axis (a axis) induces the reentrant phase transition from a paraelectric weak ferromagnetic structure to a ferroelectric structure. The corresponding H-T phase diagrams have been drawn.

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English version:
Journal of Experimental and Theoretical Physics Letters, 2010, 91:3, 147–154

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Received: 29.12.2009

Citation: A. A. Mukhin, V. Yu. Ivanov, A. M. Kuz'menko, A. S. Prokhorov, A. A. Pronin, S. N. Barilo, G. L. Bychkov, S. V. Shiryaev, “Magnetic and ferroelectric properties of exchange-frustrated multiferroics (Ni1 − xTx)3V2O8 (T = Co, Mn, Zn)”, Pis'ma v Zh. Èksper. Teoret. Fiz., 91:3 (2010), 158–165; JETP Letters, 91:3 (2010), 147–154

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    Citing articles on Google Scholar: Russian citations, English citations
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    This publication is cited in the following articles:
    1. Smol'nikov A.G., Ogloblichev V.V., Sadykov A.F., Piskunov Yu.V., Gerashchenko A.P., Verkhovskii S.V., Yakubovskii A.Yu., Barilo S.N., Bychkov G.L., Shiryaev S.V., Zh Èksper Teoret Fiz, 112:6 (2011), 1020–1025  crossref  adsnasa  isi  scopus
    2. Kumarasiri A., Lawes G., Physical Review B, 84:6 (2011), 064447  crossref  adsnasa  isi  elib  scopus
    3. Qureshi N., Ressouche E., Mukhin A.A., Ivanov V.Yu., Barilo S.N., Shiryaev S.V., Skumryev V., Phys. Rev. B, 88:17 (2013)  crossref  isi  elib  scopus
    4. Jezierski A., Kaczkowski J., Szymczak R., Szymczak H., Ferroelectrics, 461:1, SI (2014), 76–84  crossref  isi  elib  scopus
    5. Kaczkowski J., Jezierski A., Ferroelectrics, 461:1, SI (2014), 92–98  crossref  mathscinet  isi  elib  scopus
    6. Lee S., Lee H., Choi Y.N., Semkin M.A., Teplykh A.E., Skryabin Yu.N., Li W.-H., Pirogov A.N., J. Magn. Magn. Mater., 397 (2016), 225–229  crossref  adsnasa  isi  elib  scopus
    7. Qureshi N., Ressouche E., Mukhin A.A., Ivanov V.Yu., Barilo S.N., Shiryaev S.V., Skumryev V., Phys. Rev. B, 94:17 (2016), 174441  crossref  isi  elib  scopus
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