Nature of optical excitations in the frustrated kagome compound Herbertsmithite
arXiv:1711.11340 · doi:10.1103/PhysRevB.96.241114
Abstract
Optical conductivity measurements are combined with density functional theory calculations in order to understand the electrodynamic response of the frustrated Mott insulators Herbertsmithite and the closely-related kagome-lattice compound . We identify these materials as charge-transfer rather than Mott-Hubbard insulators, similar to the high- cuprate parent compounds. The band edge is at 3.3 and 3.6 eV, respectively, establishing the insulating nature of these compounds. Inside the gap, we observe dipole-forbidden local electronic transitions between the Cu orbitals in the range 1--2 eV. With the help of \textit{ab initio} calculations we demonstrate that the electrodynamic response in these systems is directly related to the role of on-site Coulomb repulsion: while charge-transfer processes have their origin on transitions between the ligand band and the Cu upper Hubbard band, \textit{local} - excitations remain rather unaffected by correlations.
5 pages, 5 figures, Supplemental Material
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