Colossal Thermoelectric Power Factor in KRhO
arXiv:1311.3402 · doi:10.1002/adfm.201103106
Abstract
We discuss the thermoelectric and optical properties of layered KRhO (\emph{x} = 1/2 and 7/8) in terms of the electronic structure determined by first principles calculations as well as Boltzmann transport theory. Our optimized lattice constants differ significantly from the experiment, but result in optical and transport properties close to the experiment. The main contribution to the optical spectra are due to intra and inter-band transitions between the Rh 4\emph{d} and O 2\emph{p} states. We find a similar power factor for pristine KRhO at low and high cation concentartions. Our transport results of hydrated KRhO at room temperature show highest value of the power factor among the hole-type materials. Specially at 100 K, we obtain a value of 310 K for KRhO, which is larger than that of NaCoO {[}M. Lee \emph{et al}., Nat. Mater. 5, 537 (2006){]}. In general, the electronic and optical properties of KRhO are similar to NaCoO with enhanced transport properties in the hydrated phase.
References in corpus (7)
- BoltzTraP. A code for calculating band-structure dependent quantities
- Crystal Structure and Elementary Properties of NaxCoO2 (x = 0.32, 0.5, 0.6, 0.75, and 0.92) in the Three-Layer NaCoO2 Family
- Impact of lithium composition on the thermoelectric properties of the layered cobalt oxide system LixCoO2
- Magnetic ordering in the striped nickelate La5/3Sr1/3NiO4: A band structure point of view
- Magnetic ground state of coupled edge-sharing CuO_2 spin-chains
- Optical Study of the Electronic Structure and Correlation Effects in K0.49RhO2
- Chemical Differences between K and Na in Alkali Cobaltates
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- Anomalous band renormalization due to high energy in the colossal thermoelectric material KRhO