硝酸盐
氨
还原(数学)
吸附
化学
无机化学
有机化学
数学
几何学
作者
An‐Liang Wang,Chaoqun Ma,Huaifang Zhang,Jing Xia,Xiaojuan Zhu,Kaiyu Qu,Fei Feng,Sumei Han,Caihong He,Xuli Ma,Gang� Li,Wenbin Cao,Xiang-Min Meng,Lihua Zhu,Qipeng Lu
出处
期刊:Research Square - Research Square
日期:2024-01-31
标识
DOI:10.21203/rs.3.rs-3780015/v1
摘要
Abstract Electrocatalytic nitrate (NO3-) reduction reaction (NO3RR) holds great potential for the conversion of NO3- contaminants into valuable ammonia in a sustainable method. Unfortunately, the non-equilibrium adsorption of intermediates and sluggish multi-electron transfer have detrimental impacts on the electrocatalytic performance of the NO3RR, posing obstacles to its practical application. Herein, we initially screen the adsorption energies of three key intermediates, i.e., *NO3, *NO and *H2O, along with the d-band centers on 21 types of transition metals (IIIV and IB)-Sb/Bi based intermetallic compounds (IMCs) as electrocatalysts. The results reveal that hexagonal CoSb IMCs possess the optimal adsorption equilibrium for key intermediates, and exhibit outstanding electrocatalytic NO3RR performance with Faradaic efficiency of 96.3%, NH3 selectivity of 89.1% and excellent stability, surpassing the majority of recently reported NO3RR electrocatalysts. Moreover, the integration of CoSb IMCs/C into a novel Zn-NO3- battery results in a high power density of 11.88 mW cm-2.
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