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Published on: December 6, 2021
High-Entropy Effect of Mesoporous Metal Oxides Promotes Tandem Catalysis for Efficient Ammonia Electrosynthesis from
Hangjuan He1, Huiqin Yao2, Lizhi Sun1
1Key Laboratory of Green Chemistry and Technology of Ministry of Education, College of Chemistry, Sichuan University, Chengdu, 610064, China.
Abstract:
Electrocatalytic nitrate reduction reaction (NO3 -RR) in water offers a sustainable alternative for robust electrosynthesis of value-added ammonia (NH3) in ambient conditions. However, NO3 -RR electrocatalysis generally involves two-step tandem routes and suffers from sluggish hydrodeoxygenation kinetics, which result in a low ammonia selectivity and yield rate. In this work, it is demonstrated that the high-entropy effect of mesoporous metal oxides remarkably decreases the energy barrier of the hydrodeoxygenation route and facilitates two-step tandem electrocatalysis of NO3 -RR, which thus promotes selective NH3 electrosynthesis in an alkaline condition. By comparing a series of high-entropy mesoporous metal oxides and corresponding metal alloys and monometallic counterparts, high-entropy mesoporous (CoMnFeNiCu)3O4 discloses the highest electrocatalytic performance for efficient NH3 electrosynthesis from NO3 -RR, including remarkable NH3 Faradaic efficiency of 96.3%, high NH3 yield rate of 1.83 mmol h-1 mg-1, and excellent recycling stability of 20 cycles, representing one of the best electrocatalysts reported in the past three years. Moreover, cathode NO3 -RR performance for selective NH3 electrosynthesis is enhanced when further coupled with the thermodynamically favorable benzyl alcohol oxidation reaction at the anode. It is expected that the high-entropy effect opens up a new route to design a library of novel tandem mesoporous metal electrocatalysts for the selective electrosynthesis of various valuable chemicals from wastewater.
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