Abstract

The magnetization, resistivity ρ, thermoelectric power (TEP) S, and thermal conductivity κ in perovskite cobalt oxide Gd 0.7Sr 0.3CoO 3 have been investigated systematically. Based on the temperature dependence of susceptibility χ g( T) and Seebeck coefficient S( T), a combination of the intermediate-spin (IS) state for Co 3+ and the low-spin (LS) state for Co 4+ can be suggested. A metal–insulator transition (MIT) caused by the hopping of σ* electrons (localized or delocalized e g electrons) from the IS Co 3+ to the LS Co 4+ is observed. Meanwhile, S( T) curve also displays an obvious phonon drag effect. In addition, based on the analysis of the temperature dependence of S( T) and ρ( T), the high-temperature small polaron conduction and the low-temperature variable-range-hopping conduction are suggested, respectively. As to thermal conduction κ( T), rather low κ values in the whole measured temperature range is attributed to unusually large local Jahn–Teller (JT) distortion of Co 3+O 6 octahedra with IS state.

Full Text
Published version (Free)

Talk to us

Join us for a 30 min session where you can share your feedback and ask us any queries you have

Schedule a call