Co(PO 3 ) 2 @CoP Heterojunction in CoPO/GC/NF Nanoarrays Modulate Proton Hydrogen-Promoted Electrocatalytic Hydrodechlorination.
Junliang XieYuxiang LiXing YanZhonghao YuHuan ChenFang JiangPublished in: ACS applied materials & interfaces (2024)
Cobalt phosphide has received much attention as an efficient catalyst for electrocatalytic hydrodechlorination (EHDC). However, the active species proton hydrogen (H*) is consumed by the hydrogen evolution reaction (HER). Herein, we report a crystal regulation strategy for cobalt phosphate/graphitic nanocarbon/nickel foam (CoPO/GC/NF) catalysts applied for the EHDC of 2,4-dichlorophenoxyacetic acid (2,4-D). Characterization revealed that during the high-temperature phosphatization process, CoPO/GC/NF catalysts developed Co(PO 3 ) 2 @CoP heterojunctions, enhancing charge transfer at the electrolyte-catalyst interface and water dissociation. The interaction between Co(PO 3 ) 2 and CoP induced the reconstitution of CoP into the Co-OH species, which facilitated the production of H* by accelerating the Volmer step, enhancing EHDC activity. Furthermore, Co(PO 3 ) 2 species improve the catalyst tolerance, with CoPO/GC/NF(450) maintaining over 71% yield of phenoxyacetic acid (PA) in continuous testing for up to 80 h under high-salt conditions. This work clarifies the surface transformation process of CoP/GC/NF during hydrodechlorination and demonstrates great potential for chlorophenol wastewater remediation.
Keyphrases
- visible light
- metal organic framework
- reduced graphene oxide
- signaling pathway
- lps induced
- highly efficient
- nuclear factor
- pi k akt
- oxidative stress
- gas chromatography
- ionic liquid
- gold nanoparticles
- high temperature
- room temperature
- inflammatory response
- single cell
- carbon dioxide
- electron transfer
- mass spectrometry
- carbon nanotubes
- toll like receptor
- diabetic rats
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