TY - JOUR
T1 - Boosting ammonia electrosynthesis via interfacial tandem nitrate reduction enabled by an amorphous@crystalline electrocatalyst
AU - Li, Zeyu
AU - Wang, Qing
AU - Zhong, Lixiang
AU - Yan, Chunshuang
AU - Shi, Zichen
AU - Ou, Yinggang
AU - Shang, Yaru
AU - Zhang, Chu
AU - Tian, Shengji
AU - Liu, Hengjie
AU - Liu, Daobin
AU - Song, Pin
AU - Qi, Zeming
AU - Song, Li
AU - Lv, Chade
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/6
Y1 - 2025/6
N2 - Electrocatalytic ammonia synthesis through the nitrate to ammonia (NRA) technique is of energy and environmental sustainability for the nitrogen cycle. Nevertheless, the nitrite (*NO2) intermediate may desorb, which would reduce the productivity of ammonia and the of Faradaic efficiency. Here, a heterostructured electrocatalyst consisting of amorphous CuO and crystalline CeO2 is prepared for efficient NH3 production through the interface tandem [2 + 6]-electron electrocatalysis approach. In alkaline medium, the NH3 yield and Faradaic efficiency reach 8.6 mg h−1 mgcat−1 and 96 %, respectively. As evidenced by the in situ experiments and theoretical calculations, the amorphous@crystalline interfacial local unsaturated Cu-Ce bimetallic site configuration endows the heterostructured electrocatalyst with strong *NO2 adsorption abilities and sufficient *H supply, which synergistically catalyze NH3 production through the [2 + 6]-electron NRA process. Furthermore, the Zn-NO3− battery devices, constructed with amorphous-CuO@crystalline-CeO2 as electrode materials, demonstrate outstanding application results. This work suggests an achievable route for promoting the NRA activity, enabling simultaneous ammonia production, electricity generation, and wastewater treatment, and holds great potential for the development of new heterostructured electrocatalysts for NH3 production.
AB - Electrocatalytic ammonia synthesis through the nitrate to ammonia (NRA) technique is of energy and environmental sustainability for the nitrogen cycle. Nevertheless, the nitrite (*NO2) intermediate may desorb, which would reduce the productivity of ammonia and the of Faradaic efficiency. Here, a heterostructured electrocatalyst consisting of amorphous CuO and crystalline CeO2 is prepared for efficient NH3 production through the interface tandem [2 + 6]-electron electrocatalysis approach. In alkaline medium, the NH3 yield and Faradaic efficiency reach 8.6 mg h−1 mgcat−1 and 96 %, respectively. As evidenced by the in situ experiments and theoretical calculations, the amorphous@crystalline interfacial local unsaturated Cu-Ce bimetallic site configuration endows the heterostructured electrocatalyst with strong *NO2 adsorption abilities and sufficient *H supply, which synergistically catalyze NH3 production through the [2 + 6]-electron NRA process. Furthermore, the Zn-NO3− battery devices, constructed with amorphous-CuO@crystalline-CeO2 as electrode materials, demonstrate outstanding application results. This work suggests an achievable route for promoting the NRA activity, enabling simultaneous ammonia production, electricity generation, and wastewater treatment, and holds great potential for the development of new heterostructured electrocatalysts for NH3 production.
KW - Electrocatalytic ammonia synthesis
KW - Heterostructured electrocatalyst
KW - Interfacial tandem catalysis
KW - Nitrate reduction to ammonia
UR - http://www.scopus.com/inward/record.url?scp=105002490739&partnerID=8YFLogxK
U2 - 10.1016/j.mattod.2025.02.012
DO - 10.1016/j.mattod.2025.02.012
M3 - Article
AN - SCOPUS:105002490739
SN - 1369-7021
VL - 85
SP - 49
EP - 59
JO - Materials Today
JF - Materials Today
ER -