4.8 Article

Superior Thermoelectric Performance of Textured Ca3Co4-xO9+δ Ceramic Nanoribbons

Journal

ADVANCED FUNCTIONAL MATERIALS
Volume -, Issue -, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.202304464

Keywords

electron microscopy; electrospinning; microstructure; thermoelectric properties; nanoribbons

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Calcium cobaltite Ca3Co4-xO9+δ (CCO) is a promising p-type thermoelectric material with anisotropic properties. Texturing and nanostructuring are favored to improve its performance. This study successfully assembled electrospun CCO nanoribbon ceramics with high electrical conductivity and greatly enhanced Seebeck coefficient, surpassing previous performances. The textured nanoribbon ceramic also achieved a relatively large figure-of-merit, making it a notable advancement in CCO thermoelectric materials.
Calcium cobaltite Ca3Co4-xO9+& delta; (CCO) is a promising p-type thermoelectric (TE) material for high-temperature applications in air. The grains of the material exhibit strong anisotropic properties, making texturing and nanostructuring mostly favored to improve thermoelectric performance. On the one hand multitude of interfaces are needed within the bulk material to create reflecting surfaces that can lower the thermal conductivity. On the other hand, low residual porosity is needed to improve the contact between grains and raise the electrical conductivity. In this study, CCO fibers with 100% flat cross sections in a stacked, compact form are electrospun. Then the grains within the nanoribbons in the plane of the fibers are grown. Finally, the nanoribbons are electrospun into a textured ceramic that features simultaneously a high electrical conductivity of 177 S cm(-1) and an immensely enhanced Seebeck coefficient of 200 & mu;V K-1 at 1073 K are assembled. The power factor of 4.68 & mu;W cm(-1) K-2 at 1073 K in air surpasses all previous CCO TE performances of nanofiber ceramics by a factor of two. Given the relatively high power factor combined with low thermal conductivity, a relatively large figure-of-merit of 0.3 at 873 K in the air for the textured nanoribbon ceramic is obtained.

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