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Tunable 3D/2D magnetism in the (MnBi2Te4)(Bi2Te3) m topological insulators family. / Klimovskikh, Ilya I.; Otrokov, Mikhail M.; Estyunin, Dmitry; Eremeev, Sergey V.; Filnov, Sergey O.; Koroleva, Alexandra; Shevchenko, Eugene; Voroshnin, Vladimir; Rybkin, Artem G.; Rusinov, Igor P.; Blanco-Rey, Maria; Hoffmann, Martin; Aliev, Ziya S.; Babanly, Mahammad B.; Amiraslanov, Imamaddin R.; Abdullayev, Nadir A.; Zverev, Vladimir N.; Kimura, Akio; Tereshchenko, Oleg E.; Kokh, Konstantin A.; Petaccia, Luca; Di Santo, Giovanni; Ernst, Arthur; Echenique, Pedro M.; Mamedov, Nazim T.; Shikin, Alexander M.; Chulkov, Eugene V.

In: npj Quantum Materials, Vol. 5, No. 1, 54, 03.08.2020.

Research output: Contribution to journalArticlepeer-review

Harvard

Klimovskikh, II, Otrokov, MM, Estyunin, D, Eremeev, SV, Filnov, SO, Koroleva, A, Shevchenko, E, Voroshnin, V, Rybkin, AG, Rusinov, IP, Blanco-Rey, M, Hoffmann, M, Aliev, ZS, Babanly, MB, Amiraslanov, IR, Abdullayev, NA, Zverev, VN, Kimura, A, Tereshchenko, OE, Kokh, KA, Petaccia, L, Di Santo, G, Ernst, A, Echenique, PM, Mamedov, NT, Shikin, AM & Chulkov, EV 2020, 'Tunable 3D/2D magnetism in the (MnBi2Te4)(Bi2Te3) m topological insulators family', npj Quantum Materials, vol. 5, no. 1, 54. https://doi.org/10.1038/s41535-020-00255-9

APA

Klimovskikh, I. I., Otrokov, M. M., Estyunin, D., Eremeev, S. V., Filnov, S. O., Koroleva, A., Shevchenko, E., Voroshnin, V., Rybkin, A. G., Rusinov, I. P., Blanco-Rey, M., Hoffmann, M., Aliev, Z. S., Babanly, M. B., Amiraslanov, I. R., Abdullayev, N. A., Zverev, V. N., Kimura, A., Tereshchenko, O. E., ... Chulkov, E. V. (2020). Tunable 3D/2D magnetism in the (MnBi2Te4)(Bi2Te3) m topological insulators family. npj Quantum Materials, 5(1), [54]. https://doi.org/10.1038/s41535-020-00255-9

Vancouver

Klimovskikh II, Otrokov MM, Estyunin D, Eremeev SV, Filnov SO, Koroleva A et al. Tunable 3D/2D magnetism in the (MnBi2Te4)(Bi2Te3) m topological insulators family. npj Quantum Materials. 2020 Aug 3;5(1). 54. https://doi.org/10.1038/s41535-020-00255-9

Author

Klimovskikh, Ilya I. ; Otrokov, Mikhail M. ; Estyunin, Dmitry ; Eremeev, Sergey V. ; Filnov, Sergey O. ; Koroleva, Alexandra ; Shevchenko, Eugene ; Voroshnin, Vladimir ; Rybkin, Artem G. ; Rusinov, Igor P. ; Blanco-Rey, Maria ; Hoffmann, Martin ; Aliev, Ziya S. ; Babanly, Mahammad B. ; Amiraslanov, Imamaddin R. ; Abdullayev, Nadir A. ; Zverev, Vladimir N. ; Kimura, Akio ; Tereshchenko, Oleg E. ; Kokh, Konstantin A. ; Petaccia, Luca ; Di Santo, Giovanni ; Ernst, Arthur ; Echenique, Pedro M. ; Mamedov, Nazim T. ; Shikin, Alexander M. ; Chulkov, Eugene V. / Tunable 3D/2D magnetism in the (MnBi2Te4)(Bi2Te3) m topological insulators family. In: npj Quantum Materials. 2020 ; Vol. 5, No. 1.

BibTeX

@article{94dbb93aa1d048b998af8de206cabff3,
title = "Tunable 3D/2D magnetism in the (MnBi2Te4)(Bi2Te3) m topological insulators family",
abstract = "Feasibility of many emergent phenomena that intrinsic magnetic topological insulators (TIs) may host depends crucially on our ability to engineer and efficiently tune their electronic and magnetic structures. Here we report on a large family of intrinsic magnetic TIs in the homologous series of the van der Waals compounds (MnBi2Te4)(Bi2Te3)m with m = 0, ⋯, 6. Magnetic, electronic and, consequently, topological properties of these materials depend strongly on the m value and are thus highly tunable. The antiferromagnetic (AFM) coupling between the neighboring Mn layers strongly weakens on moving from MnBi2Te4 (m = 0) to MnBi4Te7 (m = 1) and MnBi6Te10 (m = 2). Further increase in m leads to change of the overall magnetic behavior to ferromagnetic (FM) one for (m = 3), while the interlayer coupling almost disappears. In this way, the AFM and FM TI states are, respectively, realized in the m = 0, 1, 2 and m = 3 cases. For large m numbers a hitherto-unknown topologically nontrivial phase can be created, in which below the corresponding critical temperature the magnetizations of the non-interacting 2D ferromagnets, formed by the MnBi2Te4 building blocks, are disordered along the third direction. The variety of intrinsic magnetic TI phases in (MnBi2Te4)(Bi2Te3)m allows efficient engineering of functional van der Waals heterostructures for topological quantum computation, as well as antiferromagnetic and 2D spintronics.",
keywords = "ANOMALOUS HALL STATE, ELECTRONIC-STRUCTURE, DIRAC-FERMION, ENERGY, SPECTRA, SURFACE, SYSTEM, GAP",
author = "Klimovskikh, {Ilya I.} and Otrokov, {Mikhail M.} and Dmitry Estyunin and Eremeev, {Sergey V.} and Filnov, {Sergey O.} and Alexandra Koroleva and Eugene Shevchenko and Vladimir Voroshnin and Rybkin, {Artem G.} and Rusinov, {Igor P.} and Maria Blanco-Rey and Martin Hoffmann and Aliev, {Ziya S.} and Babanly, {Mahammad B.} and Amiraslanov, {Imamaddin R.} and Abdullayev, {Nadir A.} and Zverev, {Vladimir N.} and Akio Kimura and Tereshchenko, {Oleg E.} and Kokh, {Konstantin A.} and Luca Petaccia and {Di Santo}, Giovanni and Arthur Ernst and Echenique, {Pedro M.} and Mamedov, {Nazim T.} and Shikin, {Alexander M.} and Chulkov, {Eugene V.}",
year = "2020",
month = aug,
day = "3",
doi = "10.1038/s41535-020-00255-9",
language = "English",
volume = "5",
journal = "npj Quantum Materials",
issn = "2397-4648",
publisher = "Nature Publishing Group",
number = "1",

}

RIS

TY - JOUR

T1 - Tunable 3D/2D magnetism in the (MnBi2Te4)(Bi2Te3) m topological insulators family

AU - Klimovskikh, Ilya I.

AU - Otrokov, Mikhail M.

AU - Estyunin, Dmitry

AU - Eremeev, Sergey V.

AU - Filnov, Sergey O.

AU - Koroleva, Alexandra

AU - Shevchenko, Eugene

AU - Voroshnin, Vladimir

AU - Rybkin, Artem G.

AU - Rusinov, Igor P.

AU - Blanco-Rey, Maria

AU - Hoffmann, Martin

AU - Aliev, Ziya S.

AU - Babanly, Mahammad B.

AU - Amiraslanov, Imamaddin R.

AU - Abdullayev, Nadir A.

AU - Zverev, Vladimir N.

AU - Kimura, Akio

AU - Tereshchenko, Oleg E.

AU - Kokh, Konstantin A.

AU - Petaccia, Luca

AU - Di Santo, Giovanni

AU - Ernst, Arthur

AU - Echenique, Pedro M.

AU - Mamedov, Nazim T.

AU - Shikin, Alexander M.

AU - Chulkov, Eugene V.

PY - 2020/8/3

Y1 - 2020/8/3

N2 - Feasibility of many emergent phenomena that intrinsic magnetic topological insulators (TIs) may host depends crucially on our ability to engineer and efficiently tune their electronic and magnetic structures. Here we report on a large family of intrinsic magnetic TIs in the homologous series of the van der Waals compounds (MnBi2Te4)(Bi2Te3)m with m = 0, ⋯, 6. Magnetic, electronic and, consequently, topological properties of these materials depend strongly on the m value and are thus highly tunable. The antiferromagnetic (AFM) coupling between the neighboring Mn layers strongly weakens on moving from MnBi2Te4 (m = 0) to MnBi4Te7 (m = 1) and MnBi6Te10 (m = 2). Further increase in m leads to change of the overall magnetic behavior to ferromagnetic (FM) one for (m = 3), while the interlayer coupling almost disappears. In this way, the AFM and FM TI states are, respectively, realized in the m = 0, 1, 2 and m = 3 cases. For large m numbers a hitherto-unknown topologically nontrivial phase can be created, in which below the corresponding critical temperature the magnetizations of the non-interacting 2D ferromagnets, formed by the MnBi2Te4 building blocks, are disordered along the third direction. The variety of intrinsic magnetic TI phases in (MnBi2Te4)(Bi2Te3)m allows efficient engineering of functional van der Waals heterostructures for topological quantum computation, as well as antiferromagnetic and 2D spintronics.

AB - Feasibility of many emergent phenomena that intrinsic magnetic topological insulators (TIs) may host depends crucially on our ability to engineer and efficiently tune their electronic and magnetic structures. Here we report on a large family of intrinsic magnetic TIs in the homologous series of the van der Waals compounds (MnBi2Te4)(Bi2Te3)m with m = 0, ⋯, 6. Magnetic, electronic and, consequently, topological properties of these materials depend strongly on the m value and are thus highly tunable. The antiferromagnetic (AFM) coupling between the neighboring Mn layers strongly weakens on moving from MnBi2Te4 (m = 0) to MnBi4Te7 (m = 1) and MnBi6Te10 (m = 2). Further increase in m leads to change of the overall magnetic behavior to ferromagnetic (FM) one for (m = 3), while the interlayer coupling almost disappears. In this way, the AFM and FM TI states are, respectively, realized in the m = 0, 1, 2 and m = 3 cases. For large m numbers a hitherto-unknown topologically nontrivial phase can be created, in which below the corresponding critical temperature the magnetizations of the non-interacting 2D ferromagnets, formed by the MnBi2Te4 building blocks, are disordered along the third direction. The variety of intrinsic magnetic TI phases in (MnBi2Te4)(Bi2Te3)m allows efficient engineering of functional van der Waals heterostructures for topological quantum computation, as well as antiferromagnetic and 2D spintronics.

KW - ANOMALOUS HALL STATE

KW - ELECTRONIC-STRUCTURE

KW - DIRAC-FERMION

KW - ENERGY

KW - SPECTRA

KW - SURFACE

KW - SYSTEM

KW - GAP

UR - http://www.scopus.com/inward/record.url?scp=85089011062&partnerID=8YFLogxK

UR - https://www.mendeley.com/catalogue/5509e196-b4a4-3f46-813c-175011f42249/

U2 - 10.1038/s41535-020-00255-9

DO - 10.1038/s41535-020-00255-9

M3 - Article

AN - SCOPUS:85089011062

VL - 5

JO - npj Quantum Materials

JF - npj Quantum Materials

SN - 2397-4648

IS - 1

M1 - 54

ER -

ID: 61523437