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NiFeSn alloy-enhanced microbial electrosynthesis for carbon dioxide conversion to butyric and caproic acids
Emmanuel Nwanebu1, Julien Pauzé Foixet1, Tambakassi Mihin2
1Clean Energy Innovation Research Centre, National Research Council of Canada, 6100 Royalmount Ave., Montreal, QC H4P 2R2, Canada.
Abstract:
A mixed anaerobic microbial consortium producing short- and medium-chain fatty acids from CO2 and H2 was developed through mixed culture cultivation under a CO2/H2 atmosphere combined with the serial transfer technique to promote the growth of acetogenic and chain-elongating bacteria. Consequently, this enrichment was used to inoculate laboratory-scale microbial electrosynthesis (MES) cells that were continuously fed with CO2. To improve MES performance, a novel three-dimensional conductive polylactate cathode coated with a NiFeSn alloy was employed in one MES cell, while another MES cell was equipped with a carbon felt (CF) cathode. CO2 conversion and chain elongation were substantially increased in the NiFeSn cell. In this cell, a steady-state volumetric CO2 conversion rate of 2.4 L (Lc d)-1 was achieved, with corresponding butyrate and caproate production rates of 1 g (Lc d)-1 and 0.07 g (Lc d)-1, respectively, at a current density of up to 4 mA cm-2. The formation of C16-C18 fatty acids was also observed. 16S rRNA amplicon sequencing of the catholytes and cathodic biofilms revealed a significant shift in microbial populations from Clostridium-driven acetogenesis and chain elongation in the enrichment to one most likely driven by the genera Eubacterium, Megasphaera and Caproiciproducens in MES cells.