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Designing an Electron-Deficient Pd/NiCoO Bifunctional Electrocatalyst with an Enhanced Hydrodechlorination Activity to Reduce the Consumption of Pd

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Date 2021 Jul 1
PMID 34196544
Citations 2
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Abstract

Reducing the Pd loading on electrodes is critical in the electrocatalytic hydrodechlorination (EHDC) of chlorinated organic compounds (COCs). The EHDC reaction of COCs on Pd involves three steps: H* formation, H* adsorption, and dechlorination. It has been established that the initial hydrogen evolution reaction (HER) occurs on Pd and the dechlorination steps occur on Pd. A strategy is proposed to design new electrodes by adding a reducible HER-active interlayer to replace Pd, fulfilling the responsibility of producing hydrogen, and to facilitate the formation of more Pd for following C-Cl bond cleavage. Keeping the atomic hydrogen adsorption energy on the Pd/interlayer similar to that on pure Pd is also necessary for H* adsorption as well as to maintain a high EHDC activity. For the first time, the NiCoO-interlayer-modified Pd/Ni-foam electrode was applied in the EHDC of COCs, which enhanced the EHDC efficiency to 100% within 90 min and reduced 88.6% of Pd consumption. The Pd/NiCoO/Ni-foam electrode with enhanced EHDC activity was also observed with almost 100% product selectivity and good stability. A synergistic mechanism is proposed for the enhanced EHDC activity on the Pd/NiCoO/Ni-foam. This work offers a simple and useful strategy to design robust electrocatalysts for the EHDC of COCs.

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