English

Electrodynamics of quantum spin liquids

Strongly Correlated Electrons 2018-05-01 v1

Abstract

Quantum spin liquids attract great interest due to their exceptional magnetic properties characterized by the absence of long-range order down to low temperatures despite the strong magnetic interaction. Commonly, these compounds are strongly correlated electron systems, and their electrodynamic response is governed by the Mott gap in the excitation spectrum. Here we summarize and discuss the optical properties of several two-dimensional quantum spin liquid candidates. First we consider the inorganic material Herbertsmithite ZnCu3_3(OH)6_6Cl2_2 and related compounds, which crystallize in a kagome lattice. Then we turn to the organic compounds β\beta^{\prime}-EtMe3_3\-Sb\-[Pd(dmit)2_2]2_2, κ\kappa-(BEDT-TTF)2_2Ag2_2(CN)3_3 and κ\kappa-(BEDT-TTF)2_2Cu2_2(CN)3_3, where the spins are arranged in an almost perfect triangular lattice, leading to strong frustration. Due to differences in bandwidth, the effective correlation strength varies over a wide range, leading to a rather distinct behavior as far as the electrodynamic properties are concerned. We discuss the spinon contributions to the optical conductivity in comparison to metallic quantum fluctuations in the vicinity of the Mott transition.

Keywords

Cite

@article{arxiv.1804.10702,
  title  = {Electrodynamics of quantum spin liquids},
  author = {Martin Dressel and Andrej Pustogow},
  journal= {arXiv preprint arXiv:1804.10702},
  year   = {2018}
}

Comments

20 pages, 13 figures

R2 v1 2026-06-23T01:38:41.240Z