Metallic Surface States Probed Within the Microwave Skin Depth of the Putative Topological Insulator YBiPt Compound
arXiv:1407.7797 · doi:10.1088/0953-8984/28/12/125601
Abstract
Electron Spin Resonance (ESR) experiments of diluted Nd ions in the claimed topological insulator (TI) YBiPt are reported. Powdered samples with grain size from 100 m to 2,000 m were investigated. At low temperatures, 1.6 K \emph{T} 20 K, the X-band ( GHz) ESR spectra show a \emph{g}-value of 2.66(4) and a Dysonian resonance lineshape which shows a remarkably unusual temperature, concentration, microwave power and particle size dependence. These results indicate that metallic and insulating behavior coexist within a skin depth of 15 m. Furthermore, the Nd spin dynamics in YBiPt are consistent with the existence of a \emph{phonon-bottleneck process} which allows the energy absorbed by the Nd ions at resonance to reach the thermal bath via the conduction electrons in the metallic surface states of YBiPt. These results are discussed in terms of the claimed topological semi-metal properties of YBiPt.
8 pages, 10 figures
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