English

Spin liquid properties of the kagome material Cu$_3$(HOTP)$_2$

Strongly Correlated Electrons 2024-11-28 v1

Abstract

The metal-organic-framework (MOF) compound Cu3_3(HOTP)2_2, a.k.a. Cu3_3(HHTP)2_2, is a small-gap semiconductor containing a kagome lattice of antiferromagnetically coupled SS=1/2 CuII^\mathrm{II} spins with intra-layer nearest-neighbor exchange coupling JJ \sim 2 K. The intra-layer JJ value obtained from DFT+U calculations is shown to match with the experimental value for reasonable values of U. Muon spin relaxation confirms no magnetic ordering down to 50~mK and sees spin fluctuations diffusing on a 2D lattice, consistent with a quantum spin liquid (QSL) ground state being present within highly decoupled kagome layers. Reduction of the spin diffusion rate on cooling from the paramagnetic region to the low-temperature QSL region reflects quantum entanglement. It is also found that the layers become more strongly decoupled in the low-temperature QSL region. Comparison of results for the spin diffusion, magnetic susceptibility and specific heat in the QSL region suggests close proximity to a quantum critical point and a large density of low energy spinless electronic excitations. A Z2_2-linear Dirac model for the spin excitations of the QSL is found to provide the best match with experiment.

Keywords

Cite

@article{arxiv.2411.18518,
  title  = {Spin liquid properties of the kagome material Cu$_3$(HOTP)$_2$},
  author = {F. L. Pratt and D. Lopez-Alcala and V. Garcia-Lopez and M. Clemente-Leon and J. J. Baldovi and E. Coronado},
  journal= {arXiv preprint arXiv:2411.18518},
  year   = {2024}
}

Comments

14 pages