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The Hall effect, in which current flows perpendicular to an applied electrical bias, has played a prominent role in modern condensed matter physics over much of the subject's history.
1901
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1902
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1903
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1905
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E. Pugh and N. Rostoker, “Hall Effect in Ferromagnetic Materials,” Reviews of Modern Physics 25
1953
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R. Karplus and J. M. Luttinger, “Hall effect in ferromagnetics,” Physical Review 95
1954
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J. Smit, “The spontaneous hall effect in ferromagnetics II,” Physica 24
1958
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M. Tinkham, Physics Bulletin (Dover Publications, 1964)
1964
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L. Landau and E. Lifshitz, “Electrodynamics of Continuous Media Course of Theoretical Physics,” (1965)
1965
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S. Shtrikman and H. Thomas, “Remarks on linear magneto-resistance and magneto-heat-conductivity,” Solid State Communications 3
1965
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E. Turov, Physical properties of magnetically ordered crystals (Academic Press, New York, 1965)
1965
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W. H. Kleiner, “Space-time symmetry of transport coefficients,” Physical Review 142
1966
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L. M. Falicov and J. Ruvalds, “Symmetry of the wave functions in the band theory of ferromagnetic metals,” Physical Review 172
1968
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L. Berger, “Side-Jump Mechanism for the Hall Effect of Ferromagnets,” Physical Review B 2
1970
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A. P. Cracknell, “Time-Reversal Degeneracies in the Band Structure of a Ferromagnetic Metal,” Phys. Rev. B 1
1970
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L. Néel, “Magnetism and Local Molecular Field,” Science 174
1971
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1980
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1982
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B. Simon, “Holonomy, the quantum adiabatic theorem, and Berry’s phase,” Physical Review Letters 51
1983
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1984
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M. Kohmoto, “Topological invariant and the quantization of the Hall conductance,” Annals of Physics 160
1985
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S. E. Prange and S. M. Girvin, The Quantum Hall Effect (Springer Berlin, 1987)
1987
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B. I. Halperin, “Possible states for a three-dimensional electron gas in a strong magnetic field,” Japanese Journal of Applied Physics 26
1987
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F. D. M. Haldane, “Model for a Quantum Hall Effect without Landau Levels: Condensed-Matter Realization of the ”Parity Anomaly”,” Physical Review Letters 61
1988
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H. Grimmer, “General relations for transport properties in magnetically ordered crystals,” Acta Crystallographica Section A 49
1993
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R. Shindou and N. Nagaosa, “Orbital Ferromagnetism and Anomalous Hall Effect in Antiferromagnets on the Distorted fcc Lattice,” Physical Review Letters 87
2001
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Y. Taguchi, Y. Oohara, H. Yoshizawa, N. Nagaosa, and Y. Tokura, “Spin Chirality, Berry Phase, and Anomalous Hall Effect in a Frustrated Ferromagnet,” Science 291
2001
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T. Jungwirth, Q. Niu, and A. H. MacDonald, “Anomalous Hall Effect in Ferromagnetic Semiconductors,” Physical Review Letters 88
2002
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M. Onoda and N. Nagaosa, “Topological Nature of Anomalous Hall Effect in Ferromagnets,” Journal of the Physical Society of Japan 71
2002
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2002
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2002
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Z. Fang, N. Nagaosa, K. Takahashi, A. Asamitsu, R. Mathieu, O. Takeshi, H. Yamada, M. Kawasaki, Y. Tokura, and T. Kiyoyuki, “The Anomalous Hall Effect and Magnetic Monopoles in Momentum Space,” Science 302
2003
Earlier work this paper cites.
D. Culcer, A. MacDonald, and Q. Niu, “Anomalous Hall effect in paramagnetic two-dimensional systems,” Physical Review B - Condensed Matter and Materials Physics 68
2003
Earlier work this paper cites.
Y. Yao, L. Kleinman, A. H. MacDonald, J. Sinova, T. Jungwirth, D. sheng Wang, E. Wang, and Q. Niu, “First Principles Calculation of Anomalous Hall Conductivity in Ferromagnetic bcc Fe,” Physical Review Letters 92
2004
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F. D. M. Haldane, “Berry Curvature on the Fermi Surface: Anomalous Hall Effect as a Topological Fermi-Liquid Property,” Physical Review Letters 93
2004
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2005
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J. Noky and Y. Sun, “Linear Response in Topological Materials,” Applied Sciences 9
2005
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A. S. Núñez, R. A. Duine, P. Haney, and A. H. MacDonald, “Theory of spin torques and giant magnetoresistance in antiferromagnetic metals,” Physical Review B 73
2006
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K. S. Novoselov, Z. Jiang, Y. Zhang, S. V. Morozov, H. L. Stormer, U. Zeitler, J. C. Maan, G. S. Boebinger, P. Kim, and A. K. Geim, “Room-temperature quantum hall effect in graphene,” Science 315
2007
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2007
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2007
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2008
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V. K. Dugaev, J. Barnaś, M. Taillefumier, B. Canals, C. Lacroix, and P. Bruno, “Anomalous Hall effect and Berry phase in two-dimensional magnetic structures,” Journal of Physics: Conference Series 104
2008
Earlier work this paper cites.
T. Tomizawa and H. Kontani, “Anomalous Hall effect in the ¡math display=”inline”¿ ¡mrow¿ ¡msub¿ ¡mi¿t¡/mi¿ ¡mrow¿ ¡mn¿2¡/mn¿ ¡mi¿g¡/mi¿ ¡/mrow¿ ¡/msub¿ ¡/mrow¿ ¡/math¿ orbital kagome lattice due to noncollinearity: Significance of the orbital Aharonov-Bohm effect,” Physical Review B 80
2009
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2010
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2010
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Y. Machida, S. Nakatsuji, S. Onoda, T. Tayama, and T. Sakakibara, “Time-reversal symmetry breaking and spontaneous Hall effect without magnetic dipole order,” Nature 463
2010
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2010
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2010
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2010
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M. P. Marder, Condensed Matter Physics, 2nd Edition , 2nd ed. (Wiley, 2010)
2010
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M. Z. Hasan and C. L. Kane, “Colloquium : Topological insulators,” Reviews of Modern Physics 82
2010
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2011
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2011
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B. G. Park, J. Wunderlich, X. Martí, V. Holý, Y. Kurosaki, M. Yamada, H. Yamamoto, A. Nishide, J. Hayakawa, H. Takahashi, A. B. Shick, and T. Jungwirth, “A spin-valve-like magnetoresistance of an antiferromagnet-based tunnel junction,” Nature Materials 10
2011
Earlier work this paper cites.
A. H. MacDonald and M. Tsoi, “Antiferromagnetic metal spintronics,” Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences 369
2011
Cited alongside, same era.
2012
Cited alongside, same era.
B. Ueland, C. Miclea, Y. Kato, O. Ayala–Valenzuela, R. McDonald, R. Okazaki, P. Tobash, M. Torrez, F. Ronning, R. Movshovich, Z. Fisk, E. Bauer, I. Martin, and J. Thompson, “Controllable chirality-induced geometrical Hall effect in a frustrated highly correlated metal,” Nature Communications 3
2012
Cited alongside, same era.
S. López-Moreno, A. H. Romero, J. Mejía-López, A. Muñoz, and I. V. Roshchin, “First-principles study of electronic, vibrational, elastic, and magnetic properties of FeF ¡math display=”inline”¿ ¡msub¿ ¡mrow/¿ ¡mn¿2¡/mn¿ ¡/msub¿ ¡/math¿ as a function of pressure,” Physical Review B 85
O. Gomonay, V. Baltz, A. Brataas, and Y. Tserkovnyak, “Antiferromagnetic spin textures and dynamics,” Nature Physics 14
2018
Later among the works it cites.
V. Baltz, A. Manchon, M. Tsoi, T. Moriyama, T. Ono, and Y. Tserkovnyak, “Antiferromagnetic spintronics,” Reviews of Modern Physics 90
2018
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C. Song, Y. You, X. Chen, X. Zhou, Y. Wang, and F. Pan, “How to manipulate magnetic states of antiferromagnets,” Nanotechnology 29
2018
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2018
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N. Varnava and D. Vanderbilt, “Surfaces of axion insulators,” Physical Review B 98
2018
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2012
Cited alongside, same era.
A. Brataas, A. D. Kent, and H. Ohno, “Current-induced torques in magnetic materials,” Nature Materials 11
2012
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2012
Cited alongside, same era.
M. Franz and L. Molenkamp, eds., Contemporary Concepts of Condensed Matter Science, vol. 6 - Topological Insulators (Elsevier, 2013)
2013
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2013
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2013
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2014
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J. Kübler and C. Felser, “Non-collinear antiferromagnets and the anomalous Hall effect,” Epl 108
2014
Cited alongside, same era.
C. Sürgers, G. Fischer, P. Winkel, and H. V. Löhneysen, “Large topological Hall effect in the non-collinear phase of an antiferromagnet,” Nature Communications 5
2014
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2018
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2018
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2018
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K. Kim, J. Seo, E. Lee, K.-T. T. Ko, B. S. Kim, B. G. Jang, J. M. Ok, J. Lee, Y. J. Jo, W. Kang, J. H. Shim, C. Kim, H. W. Yeom, B. Il Min, B.-J. J. Yang, and J. S. Kim, “Large anomalous Hall current induced by topological nodal lines in a ferromagnetic van der Waals semimetal,” Nature Materials 17
2018
Later among the works it cites.
N. J. Ghimire, A. S. Botana, J. S. Jiang, J. Zhang, Y.-S. Chen, and J. F. Mitchell, “Large anomalous Hall effect in the chiral-lattice antiferromagnet CoNb3S6,” Nature Communications 9
2018
Later among the works it cites.
C. Shekhar, N. Kumar, V. Grinenko, S. Singh, R. Sarkar, H. Luetkens, S.-C. Wu, Y. Zhang, A. C. Komarek, E. Kampert, Y. Skourski, J. Wosnitza, W. Schnelle, A. McCollam, U. Zeitler, J. Kübler, B. Yan, H.-H. Klauss, S. S. P. Parkin, and C. Felser, “Anomalous Hall effect in Weyl semimetal half-Heusler compounds RPtBi (R = Gd and Nd),” Proceedings of the National Academy of Sciences 115
2018
Later among the works it cites.
K. S. Takahashi, H. Ishizuka, T. Murata, Q. Y. Wang, Y. Tokura, N. Nagaosa, and M. Kawasaki, “Anomalous Hall effect derived from multiple Weyl nodes in high-mobility EuTiO 3 films,” Science Advances 4
2018
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K. Ahadi, H. Kim, and S. Stemmer, “Spontaneous Hall effects in the electron system at the SmTiO 3 /EuTiO 3 interface,” APL Materials 6
2018
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K. Ueda, R. Kaneko, H. Ishizuka, J. Fujioka, N. Nagaosa, and Y. Tokura, “Spontaneous Hall effect in the Weyl semimetal candidate of all-in all-out pyrochlore iridate,” Nature Communications 9
2018
Later among the works it cites.
D. Xiao, J. Jiang, J.-H. Shin, W. Wang, F. Wang, Y.-F. Zhao, C. Liu, W. Wu, M. H. W. Chan, N. Samarth, and C.-Z. Chang, “Realization of the Axion Insulator State in Quantum Anomalous Hall Sandwich Heterostructures,” Physical Review Letters 120
2018
Later among the works it cites.
Y. Tokura, K. Yasuda, and A. Tsukazaki, “Magnetic topological insulators,” Nature Reviews Physics 1
2019
Later among the works it cites.
I. Belopolski, K. Manna, D. S. Sanchez, G. Chang, B. Ernst, J. Yin, S. S. Zhang, T. Cochran, N. Shumiya, H. Zheng, B. Singh, G. Bian, D. Multer, M. Litskevich, X. Zhou, S.-M. Huang, B. Wang, T.-R. Chang, S.-Y. Xu, A. Bansil, C. Felser, H. Lin, and M. Z. Hasan, “Discovery of topological Weyl fermion lines and drumhead surface states in a room temperature magnet,” Science 365
2019
Later among the works it cites.
M. Mizuguchi and S. Nakatsuji, “Energy-harvesting materials based on the anomalous Nernst effect,” Science and Technology of Advanced Materials 20
2019
Later among the works it cites.
M. Kimata, H. Chen, K. Kondou, S. Sugimoto, P. K. Muduli, M. Ikhlas, Y. Omori, T. Tomita, A. H. MacDonald, S. Nakatsuji, and Y. Otani, “Magnetic and magnetic inverse spin Hall effects in a non-collinear antiferromagnet,” Nature 565
2019
Later among the works it cites.
K.-H. Ahn, A. Hariki, K.-W. Lee, and J. Kuneš, “Antiferromagnetism in RuO2 as d-wave Pomeranchuk instability,” Physical Review B 99
2019
Later among the works it cites.
S. Hayami, Y. Yanagi, and H. Kusunose, “Momentum-Dependent Spin Splitting by Collinear Antiferromagnetic Ordering,” Journal of the Physical Society of Japan 88
2019
Later among the works it cites.
2019
Later among the works it cites.
M. G. Vergniory, L. Elcoro, C. Felser, N. Regnault, B. A. Bernevig, and Z. Wang, “A complete catalogue of high-quality topological materials,” Nature 566
2019
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2019
Later among the works it cites.
2019
Later among the works it cites.
L. Vistoli, W. Wang, A. Sander, Q. Zhu, B. Casals, R. Cichelero, A. Barthélémy, S. Fusil, G. Herranz, S. Valencia, R. Abrudan, E. Weschke, K. Nakazawa, H. Kohno, J. Santamaria, W. Wu, V. Garcia, and M. Bibes, “Giant topological Hall effect in correlated oxide thin films,” Nature Physics 15
2019
Later among the works it cites.
T. Ohtsuki, Z. Tian, A. Endo, M. Halim, S. Katsumoto, Y. Kohama, K. Kindo, M. Lippmaa, and S. Nakatsuji, “Strain-induced spontaneous Hall effect in an epitaxial thin film of a Luttinger semimetal,” Proceedings of the National Academy of Sciences 116
2019
Later among the works it cites.
2019
Later among the works it cites.
Y. Deng, Y. Yu, M. Z. Shi, Z. Guo, Z. Xu, J. Wang, X. H. Chen, and Y. Zhang, “Quantum anomalous Hall effect in intrinsic magnetic topological insulator MnBi 2 Te 4,” Science 367
2020
Later among the works it cites.
A. Sakai, S. Minami, T. Koretsune, T. Chen, T. Higo, Y. Wang, T. Nomoto, M. Hirayama, S. Miwa, D. Nishio-Hamane, F. Ishii, R. Arita, and S. Nakatsuji, “Iron-based binary ferromagnets for transverse thermoelectric conversion,” Nature 581
2020
Later among the works it cites.
S. Hayami, Y. Yanagi, and H. Kusunose, “Bottom-up design of spin-split and reshaped electronic band structures in antiferromagnets without spin-orbit coupling: Procedure on the basis of augmented multipoles,” Physical Review B 102
2020
Later among the works it cites.
F. Thöle, A. Keliri, and N. A. Spaldin, “Concepts from the linear magnetoelectric effect that might be useful for antiferromagnetic spintronics,” Journal of Applied Physics 127
2020
Later among the works it cites.
S. Fukami, V. O. Lorenz, and O. Gomonay, “Antiferromagnetic spintronics,” Journal of Applied Physics 128
2020
Later among the works it cites.
A. Kurenkov, S. Fukami, and H. Ohno, “Neuromorphic computing with antiferromagnetic spintronics,” Journal of Applied Physics 128
2020
Later among the works it cites.
H. Tsai, T. Higo, K. Kondou, T. Nomoto, A. Sakai, A. Kobayashi, T. Nakano, K. Yakushiji, R. Arita, S. Miwa, Y. Otani, and S. Nakatsuji, “Electrical manipulation of a topological antiferromagnetic state,” Nature 580
2020
Later among the works it cites.
T. Matsuda, N. Kanda, T. Higo, and R. Matsunaga, “Room-temperature terahertz anomalous Hall effect in Weyl antiferromagnet Mn3Sn thin films,” Nature Communications 11
2020
Later among the works it cites.
K. Samanta, M. Ležaić, M. Merte, F. Freimuth, S. Blügel, and Y. Mokrousov, “Crystal Hall and crystal magneto-optical effect in thin films of SrRuO 3,” Journal of Applied Physics 127
2020
Later among the works it cites.
L.-D. Yuan, Z. Wang, J.-W. Luo, E. I. Rashba, and A. Zunger, “Giant momentum-dependent spin splitting in centrosymmetric low- ¡math¿ ¡mi¿Z¡/mi¿ ¡/math¿ antiferromagnets,” Physical Review B 102
2020
Later among the works it cites.
F. R. Lux, F. Freimuth, S. Blügel, and Y. Mokrousov, “Chiral Hall Effect in Noncollinear Magnets from a Cyclic Cohomology Approach,” Physical Review Letters 124
2020
Later among the works it cites.
S. Du, P. Tang, J. Li, Z. Lin, Y. Xu, W. Duan, and A. Rubio, “Berry curvature engineering by gating two-dimensional antiferromagnets,” Physical Review Research 2
2020
Later among the works it cites.
J. M. Taylor, A. Markou, E. Lesne, P. K. Sivakumar, C. Luo, F. Radu, P. Werner, C. Felser, and S. S. P. Parkin, “Anomalous and topological Hall effects in epitaxial thin films of the noncollinear antiferromagnet Mn3Sn,” Physical Review B 101
2020
Later among the works it cites.
G. Tenasini, E. Martino, N. Ubrig, N. J. Ghimire, H. Berger, O. Zaharko, F. Wu, J. F. Mitchell, I. Martin, L. Forró, and A. F. Morpurgo, “Giant anomalous Hall effect in quasi-two-dimensional layered antiferromagnet Co 1 / 3 NbS 2 {\rm Co}_{1/3}{\rm NbS}_{2} ,” (2020), 10.1103/PhysRevResearch.2.023051
2020
Later among the works it cites.
W. J. Kim, T. Oh, J. Song, E. K. Ko, Y. Li, J. Mun, B. Kim, J. Son, Z. Yang, Y. Kohama, M. Kim, B. J. Yang, and T. W. Noh, “Strain engineering of the magnetic multipole moments and anomalous Hall effect in pyrochlore iridate thin films,” Science Advances 6
2020
Later among the works it cites.
S. Hayami and H. Kusunose, “Essential role of the anisotropic magnetic dipole in the anomalous Hall effect,” Physical Review B 103
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