Scaling behavior in thermoelectric misfit cobalt oxides
arXiv:cond-mat/0608264 · doi:10.1103/PhysRevLett.97.046601
Abstract
We investigate both thermoelectric and thermodynamic properties of the misfit cobalt oxide [BiCoCaO]CoO. A large negative magnetothermopower is found to scale with both magnetic field and temperature revealing a significant spin entropy contribution to thermoelectric properties giving rise to a constant S 60 V K equal to the high temperature asymptotic value of the spin 1/2 entropy. Low temperature specific heat measurements allow us to determine an enhanced electronic part with 50 mJ (mol K) attesting of strong correlations. Thereby, a critical comparison between [BiCoCaO]CoO, other cobaltites as well as other materials reveals a universal behavior of the thermopower low temperature slope as a function of testifying thus a purely electronic origin. This potentially generic scaling behavior suggests here that the high room temperature value of the thermopower in misfit cobalt oxides results from the addition of a spin entropy contribution to an enlarged electronic one.
4 pages, 4 figures
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Cited by in corpus (12)
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