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Quantum paramagnetism and magnetization plateaus in a kagome-honeycomb Heisenberg antiferromagnet

Strongly Correlated Electrons 2021-09-15 v2

Abstract

A spin-1/2 Heisenberg model on honeycomb lattice is investigated by doing triplon analysis and quantum Monte Carlo calculations. This model, inspired by Cu2_2(pymca)3_3(ClO4_4), has three different antiferromagnetic exchange interactions (JAJ_A, JBJ_B, JCJ_C) on three different sets of nearest-neighbour bonds which form a kagome superlattice. While the model is bipartite and unfrustrated, its quantum phase diagram is found to be dominated by a quantum paramagnetic phase that is best described as a spin-gapped hexagonal-singlet state. The N\'eel antiferromagnetic order survives only in a small region around JA=JB=JCJ_A=J_B=J_C. The magnetization produced by external magnetic field is found to exhibit plateaus at 1/3 and 2/3 of the saturation value, or at 1/3 alone, or no plateaus. Notably, the plateaus exist only inside a bounded region within the hexagonal-singlet phase. This study provides a clear understanding of the spin-gapped behaviour and magnetization plateaus observed in Cu2_2(pymca)3_3(ClO4_4), and also predicts the possible disappearance of 2/3 plateau under pressure.

Keywords

Cite

@article{arxiv.2102.12291,
  title  = {Quantum paramagnetism and magnetization plateaus in a kagome-honeycomb Heisenberg antiferromagnet},
  author = {Meghadeepa Adhikary and Arnaud Ralko and Brijesh Kumar},
  journal= {arXiv preprint arXiv:2102.12291},
  year   = {2021}
}

Comments

16 pages, 14 figures