Dielectric anomalies and magnetodielectric coupling behavior of single crystalline Ca3Co2O6, a geometrically frustrated magnetic spin-chain system
Tathamay Basu, Kartik K. Iyer, P. L. Paulose, E. V. Sampathkumaran

TL;DR
This study investigates the dielectric and magnetodielectric properties of single crystalline Ca3Co2O6, revealing anisotropic coupling, spin-glass behavior, and unique dielectric responses linked to spin-chain ordering and magnetic field effects.
Contribution
It provides new insights into anisotropic magnetodielectric coupling and spin-glass dynamics in Ca3Co2O6, a geometrically frustrated magnetic spin-chain system.
Findings
Evidence of anisotropic magnetodielectric coupling.
Strong frequency dependence in dielectric behavior.
Presence of a step in MDE correlating with magnetic field steps.
Abstract
The dielectric behavior of the single crystals of the spin-chain system Ca3Co2O6, undergoing geometrically frustrated antiferromagnetic ordering below 25 K, has been investigated as a function of temperature and magnetic field (H) and compared with magnetization (M) behavior. The results provide evidence for anisotropic magnetodielectric (MDE) coupling in this compound. Ac susceptibility exhibits a strong frequency dependence for H parallel c with changes of this feature with the application of external dc magnetic field. No feature in ac susceptibility could be observed for H perpendicular c, thereby providing evidence for strong anisotropic spin-glass behavior. Interestingly, the strong frequency dependence in dielectric is present for both the crystallographic directions (E parallel c and E perpendicular c where E is the electric field) with a negligible influence of H, despite the…
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Taxonomy
TopicsAdvanced Condensed Matter Physics · Physics of Superconductivity and Magnetism · Multiferroics and related materials
