Reduction and precipitation of chromium(VI) using a palladized membrane biofilm reactor

H -driven reduction of hexavalent chromium (Cr(VI)) using precious-metal catalysts is promising, but its implementation in water treatment has been restricted by poor H -transfer efficiency and high catalyst loss. We investigated the reduction of Cr(VI) through hydrogenation catalyzed by elemental-p...

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Veröffentlicht in:Water research (Oxford) 2024-02, Vol.249, p.120878-120878, Article 120878
Hauptverfasser: Wu, Chengyang, Zhou, Jingzhou, Pang, Si, Yang, Lin, Lichtfouse, Eric, Liu, Hongbo, Xia, Siqing, Rittmann, Bruce E
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Sprache:eng
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Zusammenfassung:H -driven reduction of hexavalent chromium (Cr(VI)) using precious-metal catalysts is promising, but its implementation in water treatment has been restricted by poor H -transfer efficiency and high catalyst loss. We investigated the reduction of Cr(VI) through hydrogenation catalyzed by elemental-palladium nanoparticles (PdNPs) generated in-situ within biofilm of a membrane biofilm reactor (MBfR), creating a Pd-MBfR. Experiments were conducted using a Pd-MBfR and a non-Pd MBfR. The Pd-MBfR achieved Cr(VI) (1000 μg L ) reduction of >99 % and reduced the concentration of total Cr to below 50 μg L , much lower than the total Cr concentration in the non-Pd MBfR effluent (290 μg L ). The Pd-MBfR also had a lower concentration of dissolved organic compounds compared to the non-Pd MBfR, which minimized the formation of soluble organo-Cr(III) complexes and promoted precipitation of Cr(OH) . Solid-state characterizations documented deposition of Cr(OH) as the product of Cr(VI) reduction in the Pd-MBfR. Metagenomic analyses revealed that the addition and reduction of Cr(VI) had minimal impact on the microbial community (dominated by Dechloromonas) and functional genes in the biofilm of the Pd-MBfR, since the PdNP-catalyzed reduction process was rapid. This study documented efficient Cr(VI) reduction and precipitation of Cr(OH) by the Pd-MBfR technology.
ISSN:0043-1354
1879-2448
DOI:10.1016/j.watres.2023.120878