TY - JOUR
T1 - Generation of modulated magnetic structures based on cluster multipole expansion
T2 - Application to α -Mn and CoM3 S6
AU - Yanagi, Yuki
AU - Kusunose, Hiroaki
AU - Nomoto, Takuya
AU - Arita, Ryotaro
AU - Suzuki, Michi To
N1 - Funding Information:
The authors thank K. Akiba, T. C. Kobayashi, S. Araki, H. Fukazawa, N. Shioda, T. Ohama, and Y. Kohori for fruitful discussions on experimental data for -Mn. They are also grateful to S. Seki, H. Takagi, and S. Minami for collaborative research on . This research was supported by JSPS KAKENHI Grants No. JP15H05883 (J-Physics), No. JP18H04230 (Topological Materials Science), No. JP19H01842, No. JP19H05825 (Quantum Liquid Crystals), No. JP20H05262 (Hypermaterials), No. JP20K05299, No. JP20K21067, No. JP21H01031, No. JP21H01789, No. JP21H04437, No. JP21H04990, and No. JP22H00290, by JST PRESTO Grants No. JPMJPR17N8 and No. JPMJPR20L7, and by JST-Mirai Program Grant No. JPMJMI20A1. They acknowledge Center for Computational Materials Science, Institute for Materials Research, Tohoku University for the use of MASAMUNE-IMR. Figures of crystal and magnetic structures are created by using vesta .
Publisher Copyright:
© 2023 American Physical Society.
PY - 2023/1/1
Y1 - 2023/1/1
N2 - We present a systematic method to automatically generate symmetry-adapted magnetic structures for a given crystal structure and general propagation vector k as an efficient approach of the analysis of complex modulated magnetic structures. The method is developed as an extension of the generation scheme based on the multipole expansion, which was demonstrated only for the propagation vector k=0 [M.-T. Suzuki et al., Phys. Rev. B 99, 174407 (2019)2469-995010.1103/PhysRevB.99.174407]. The symmetry-adapted magnetic structures characterized with an ordering vector k are obtained by mapping the multipole magnetic alignments on a virtual cluster to the periodic crystal structure with the phase factor for the wave vector k. This method provides all magnetic bases compatible with irreducible representations under a k group for a given crystal structure and wave vector k. Multiple-k magnetic structures are derived from a superposition of single-k magnetic bases related to the space group symmetry. We apply the scheme to deduce the magnetic structures of α-Mn and CoM3S6 (M=Nb, Ta), in which the large anomalous Hall effect has recently been observed in antiferromagnetic phases, and identify the magnetic structures inducing anomalous Hall effect without net magnetization. The physical phenomena originating from emergent multipoles in the ordered phases are also discussed based on the Landau theory.
AB - We present a systematic method to automatically generate symmetry-adapted magnetic structures for a given crystal structure and general propagation vector k as an efficient approach of the analysis of complex modulated magnetic structures. The method is developed as an extension of the generation scheme based on the multipole expansion, which was demonstrated only for the propagation vector k=0 [M.-T. Suzuki et al., Phys. Rev. B 99, 174407 (2019)2469-995010.1103/PhysRevB.99.174407]. The symmetry-adapted magnetic structures characterized with an ordering vector k are obtained by mapping the multipole magnetic alignments on a virtual cluster to the periodic crystal structure with the phase factor for the wave vector k. This method provides all magnetic bases compatible with irreducible representations under a k group for a given crystal structure and wave vector k. Multiple-k magnetic structures are derived from a superposition of single-k magnetic bases related to the space group symmetry. We apply the scheme to deduce the magnetic structures of α-Mn and CoM3S6 (M=Nb, Ta), in which the large anomalous Hall effect has recently been observed in antiferromagnetic phases, and identify the magnetic structures inducing anomalous Hall effect without net magnetization. The physical phenomena originating from emergent multipoles in the ordered phases are also discussed based on the Landau theory.
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U2 - 10.1103/PhysRevB.107.014407
DO - 10.1103/PhysRevB.107.014407
M3 - Article
AN - SCOPUS:85146339556
SN - 2469-9950
VL - 107
JO - Physical Review B
JF - Physical Review B
IS - 1
M1 - 014407
ER -