催化作用
法拉第效率
材料科学
硝酸盐
镍
氨生产
电催化剂
氢氧化物
双功能
无机化学
氨
析氧
电化学
电解
产量(工程)
氧化还原
化学工程
生产(经济)
双功能催化剂
反硝化
肥料
碱性水电解
亚硝酸盐
甘油
化学
作者
Phiralang Marbaniang,Sagar Ingavale,Warunyoo Yoopensuk,Wanwisa Limphirat,Hao Wu,Weerachon Tolek,Wijak Yospanya,Joongjai Panpranot,Qian Wang,Soorathep Kheawhom,Chanon Pornrungroj
标识
DOI:10.1021/acsami.5c09453
摘要
The accumulation of nitrate (NO3–) from agricultural runoff poses a growing threat to ecosystems and public health. Converting nitrate into ammonia (NH3) through the electrochemical nitrate reduction reaction (NO3RR) offers a promising strategy to mitigate environmental contamination while creating a sustainable circular route to fertilizer production. However, achieving high NH3 production and energy efficiency remains challenging. Here, we report a binder-free mixed-phase nickel borate/nickel hydroxide bifunctional electrocatalyst directly grown on Ni foam that enables efficient NO3RR without using an external Ni precursor. The optimized catalyst achieves a high NH3 yield rate of 1.49 ± 0.04 mmol h–1 cm–2 and a Faradaic efficiency for ammonia (FENH3) of 81 ± 4.8% at −0.55 V vs RHE. To further reduce the energy input, we couple NO3RR with glycerol oxidation reaction at the anode, replacing the energy-intensive oxygen evolution reaction. The integrated NO3RR||GOR system operates at a low cell voltage of 1.47 V (10 mA cm–2), producing a NH3 yield rate of ∼0.029 mmol h–1 cm–2 (∼63% FENH3), and ∼0.101 mmol h–1 cm–2 of HCOO– (∼73% Faradaic efficiency of formate). The hybrid electrolyzer enables a potential energy-saving of ∼13% compared to NO3RR||OER. This work advances the development of electrochemical platforms for sustainable ammonia synthesis by highlighting the cost-effective, energy-saving, and environmental benefits of coupling reaction.
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