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A topological Hund nodal line antiferromagnet.

Xian P YangYueh-Ting YaoPengyu ZhengShuyue GuanHuibin ZhouTyler A CochranChe-Min LinJia-Xin YinXiaoting ZhouZi-Jia ChengZhaohu LiTong ShiMd Shafayat HossainShengwei ChiIlya BelopolskiYu-Xiao JiangMaksim LitskevichGang XuZhaoming TianArun BansilZhiping YinShuang JiaTay-Rong ChangM Zahid Hasan
Published in: Nature communications (2024)
The interplay of topology, magnetism, and correlations gives rise to intriguing phases of matter. In this study, through state-of-the-art angle-resolved photoemission spectroscopy, density functional theory, and dynamical mean-field theory calculations, we visualize a fourfold degenerate Dirac nodal line at the boundary of the bulk Brillouin zone in the antiferromagnet YMn 2 Ge 2 . We further demonstrate that this gapless, antiferromagnetic Dirac nodal line is enforced by the combination of magnetism, space-time inversion symmetry, and nonsymmorphic lattice symmetry. The corresponding drumhead surface states traverse the whole surface Brillouin zone. YMn 2 Ge 2 thus serves as a platform to exhibit the interplay of multiple degenerate nodal physics and antiferromagnetism. Interestingly, the magnetic nodal line displays a d-orbital dependent renormalization along its trajectory in momentum space, thereby manifesting Hund's coupling. Our findings offer insights into the effect of electronic correlations on magnetic Dirac nodal lines, leading to an antiferromagnetic Hund nodal line.
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