Magneto-thermally Activated Spin-state Transition in La0.95Ca0.05CoO3: Magnetically-tunable Dipolar Glass and Giant Magneto-electricity
Suchita Pandey, Jitender Kumar, and A.M. Awasthi

TL;DR
This study investigates the spin-state transition and magneto-electric effects in La0.95Ca0.05CoO3, revealing strong coupling between spin, dipolar, and magnetic properties, with tunable relaxations and phase behaviors under magnetic fields.
Contribution
It uncovers the magneto-thermally activated spin-state transition and dipolar-glass behavior, demonstrating magnetic-field control of dielectric and magneto-electric responses in La0.95Ca0.05CoO3.
Findings
Spin-state transition at 30K with suppressed T_SST compared to pure LaCoO3.
Magneto-electricity of 50% at 27K under 9T magnetic field.
Field-tunable dipolar relaxations and phase transitions characterized by VFT and Arrhenic kinetics.
Abstract
Magneto-dielectric spectra of La0.95Ca0.05CoO3 covering the crossover of spin states reveals strong coupling of its spin and dipolar degrees of freedom. Signature of spin-state transition at 30K clearly manifests in magnetization, supported by Co L_3,2-edge XAS data on the doped-specimen as consistent with its suppressed T_SST vs. ~150K for pure LaCoO3. Dispersive activation-step {\Delta}{\epsilon}'(T_{\omega})~O(10^2) and relaxation-peak {\epsilon}"(T_{\omega}) reflect the allied influence of coexistent spin-states on the dielectric character. Dipolar relaxation in the LS regime below T_SST is partly segmental (VFT kinetics) featuring magnetic-field tunability, whereas in the LS/IS-spin disordered state above 30K, it is uncorrelated (Arrhenic kinetics) and almost impervious to the H-field. Kinetics-switchover defines the dipolar-glass transition temperature Tg(H), below which the…
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