TY - JOUR
T1 - Unconventional surface state pairs in a high-symmetry lattice with anti-ferromagnetic band-folding
AU - Wang, Lin-Lin
AU - Ahn, Junyeong
AU - Slager, Robert-Jan
AU - Kushnirenko, Yevhen
AU - Ueland, Benjamin G.
AU - Sapkota, Aashish
AU - Schrunk, Benjamin
AU - Kuthanazhi, Brinda
AU - McQueeney, Robert J.
AU - Canfield, Paul C.
AU - Kaminski, Adam
PY - 2023/4/20
Y1 - 2023/4/20
N2 - Many complex magnetic structures in a high-symmetry lattice can arise from a superposition of well-defined magnetic wave vectors. These “multi-q” structures have garnered much attention because of interesting real-space spin textures such as skyrmions. However, the role multi-q structures play in the topology of electronic bands in momentum space has remained rather elusive. Here we show that the type-I anti-ferromagnetic 1q, 2q and 3q structures in an face-centered cubic sublattice with band inversion, such as NdBi, can induce unconventional surface state pairs inside the band-folding hybridization bulk gap. Our density functional theory calculations match well with the recent experimental observation of unconventional surface states with hole Fermi arc-like features and electron pockets below the Neel temperature. We further show that these multi-q structures have Dirac and Weyl nodes. Our work reveals the special role that band-folding from anti-ferromagnetism and multi-q structures can play in developing new types of surface states.
AB - Many complex magnetic structures in a high-symmetry lattice can arise from a superposition of well-defined magnetic wave vectors. These “multi-q” structures have garnered much attention because of interesting real-space spin textures such as skyrmions. However, the role multi-q structures play in the topology of electronic bands in momentum space has remained rather elusive. Here we show that the type-I anti-ferromagnetic 1q, 2q and 3q structures in an face-centered cubic sublattice with band inversion, such as NdBi, can induce unconventional surface state pairs inside the band-folding hybridization bulk gap. Our density functional theory calculations match well with the recent experimental observation of unconventional surface states with hole Fermi arc-like features and electron pockets below the Neel temperature. We further show that these multi-q structures have Dirac and Weyl nodes. Our work reveals the special role that band-folding from anti-ferromagnetism and multi-q structures can play in developing new types of surface states.
UR - http://www.scopus.com/inward/record.url?scp=85154024314&partnerID=8YFLogxK
U2 - 10.1038/s42005-023-01180-6
DO - 10.1038/s42005-023-01180-6
M3 - Article
SN - 2399-3650
VL - 6
JO - Communications physics
JF - Communications physics
IS - 1
M1 - 78
ER -