Facet and d-band center engineering of CuNi nanocrystals for efficient nitrate electroreduction to ammonia.
Jiao WangLinlin ZhangYuanyuan WangYongjian NiuDong FangQingxiao SuCheng WangPublished in: Dalton transactions (Cambridge, England : 2003) (2022)
Electrocatalytic nitrate reduction offers a sustainable route to ammonia synthesis and wastewater treatment. However, the nitrate-to-ammonia conversion remains inefficient due to the sluggish kinetics and diverse side reactions. Herein, well-faceted CuNi nanocrystals with Ni-rich surfaces and favorable d-band centres were synthesized with the assistance of γ-cyclodextrin via a solvothermal process. When used as catalysts for nitrate electroreduction, they delivered an ammonia yield of 1.374 mmol h -1 mg -1 (0.5496 mmol h -1 cm -2 ) at -0.3 V with the faradaic efficiency and selectivity reaching 94.5% and 65.0%, respectively, surpassing pure Cu or Ni nanocrystals and most reported catalysts. Such excellent performances originated from the optimal geometric and electronic structures and special element distribution, which optimized the adsorption behaviors and accelerated the reaction kinetics. A NO 3 - -NO 2 - -NH 3 pathway was proposed with the chemical process following the initial electron transfer process as the rate-determining step. This work sheds light on the design of efficient catalysts to achieve carbon neutrality through simultaneous geometric and electronic structure modulation.
Keyphrases
- room temperature
- metal organic framework
- wastewater treatment
- nitric oxide
- transition metal
- drinking water
- electron transfer
- ionic liquid
- highly efficient
- aqueous solution
- anaerobic digestion
- antibiotic resistance genes
- pseudomonas aeruginosa
- mass spectrometry
- microbial community
- gold nanoparticles
- quantum dots
- reduced graphene oxide