A new silicon oxycarbide based gas diffusion layer for zinc-air batteries
[Display omitted] •A new ceramic gas diffusion layer has been prepared via polymer derived ceramics.•390 μm thick and 55% porous GDL is developed with the help of freeze tape casting.•GDL shows a bilayer with a thin denser layer followed by sponge-like backing layer.•The ceramic electrode shows the...
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Veröffentlicht in: | Journal of colloid and interface science 2020-10, Vol.577, p.494-502 |
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Format: | Artikel |
Sprache: | eng |
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•A new ceramic gas diffusion layer has been prepared via polymer derived ceramics.•390 μm thick and 55% porous GDL is developed with the help of freeze tape casting.•GDL shows a bilayer with a thin denser layer followed by sponge-like backing layer.•The ceramic electrode shows the excellent performance in ZAB by breathing open air.•Sponge-like GDL facilitates the oxygen exchange rate and offers better kinetics.
Rational material designs play a vital role in the gas diffusion layer (GDL) by increasing the oxygen diffusion rate and, consequently, facilitating a longer cycle life for metal-air batteries. In this work, a new porous conductive ceramic membrane has been developed as a cathodic GDL for zinc-air battery (ZAB). The bilayered structure with a thickness of 390 μm and an open porosity of 55% is derived from a preceramic precursor with the help of the freeze tape casting technique. The hydrophobic behaviour of the GDL is proved by the water contact angle of 137.5° after the coating of polytetrafluoroethylene (PTFE). The electrical conductivity of 5.59 * 10−3 S/cm is reached using graphite and MWCNT as filler materials. Tested in a ZAB system, the as-prepared GDL coated with commercial Pt-Ru/C catalyst shows an excellent cycle life over 200 cycles and complete discharge over 48 h by consuming oxygen from the atmosphere, which is comparable to commercial electrodes. The as-prepared electrode exhibits excellent ZAB performance due to the symmetric sponge-like structure, which facilitates the oxygen exchange rate and offers a short path for the oxygen ion/-electron kinetics. Thus, this work highlights the importance of a simple manufacturing process that significantly influences advanced ZAB enhancement. |
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ISSN: | 0021-9797 1095-7103 |
DOI: | 10.1016/j.jcis.2020.05.041 |