Tensor-network study of the ground state of the maple-leaf Heisenberg antiferromagnet.

We study the quantum phase diagram of the spin-1/2 nearest-neighbor Heisenberg model on the maple-leaf lattice using infinite projected entangled pair states (iPEPS) combined with a corner transfer matrix renormalization group scheme adapted to C-symmetric lattices. Focusing on the fully antiferroma...

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Detalles Bibliográficos
Publicado en:Zeitschrift für Naturforschung Section A: A Journal of Physical Sciences Vol. 81; no. 6; pp. 453 - 460
Autores principales: Nyckees, Samuel, Ghosh, Pratyay, Mila, Frédéric
Formato: Artículo
Publicado: De Gruyter Jun2026
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Acceso en línea:Ver este registro en EBSCOhost
Descripción
Sumario:We study the quantum phase diagram of the spin-1/2 nearest-neighbor Heisenberg model on the maple-leaf lattice using infinite projected entangled pair states (iPEPS) combined with a corner transfer matrix renormalization group scheme adapted to C-symmetric lattices. Focusing on the fully antiferromagnetic J–J model with J = J ≔ J, we map out the ground-state phase diagram as a function of the dimer coupling J. Our results show that the system hosts only two phases: a magnetically ordered canted-120° phase and an exact dimer singlet product phase. We identify a first-order transition between these two phases at J/J ≈ 1.45. Within the magnetically ordered phase, we observe small but finite magnetic moments. We also resolve the quantum renormalization of the canting angle, which deviates from the classical prediction over almost the entire magnetically ordered phase.