The artificial nitrogen (N2) reduction reaction (NRR) via electrocatalysis is a newly developed methodology to produce ammonia (NH3) at ambient conditions, but faces the challenges in N2 activation and poor reaction selectivity. Herein, Nb-based MXenes are developed to remarkably enhance the NRR activity through the engineering of the stretched 3D structure and oxygen vacancies (VO). The theoretical studies indicate that N2 could be initially adsorbed on VO with an end-on configuration, and the potential determining step might be the first hydrogenation step. The catalysts achieve an NH3 production rate of 29.1 μg h−1 mgcat−1 and excellent Faradic efficiency of 11.5%, surpassing other Nb-based catalysts. The selectivity of NRR is assigned t...
Electrochemical nitrogen-to-ammonia conversion by the nitrogen reduction reaction (NRR) under ambien...
The electrocatalytic N₂ reduction reaction (eNRR) – which can occur under ambient conditions with re...
Vacancy engineering has been proved repeatedly as an adoptable strategy to boost electrocatalysis, w...
The artificial nitrogen (N2) reduction reaction (NRR) via electrocatalysis is a newly developed meth...
The ambient electrochemical N2 reduction reaction (NRR) is a future approach for the artificial NH3 ...
Production of ammonia through an electrochemical process suffers from two challenging issues, namely...
Large-scale ammonia synthesis under ambient environment is a highly demanding technology which is pr...
The MXene‐supported single transition metal systems have been reported as promising electrocatalysts...
The conversion of nitrogen to ammonia offers a sustainable and environmentally friendly approach for...
MXenes, an emerging family of two-dimensional (2D) metal carbides and nitrides, have been demonstrat...
The electrochemical nitrogen reduction reaction (NRR) over single-atom catalysts (SACs) anchored on ...
The conversion of nitrogen to ammonia offers a sustainable and environmentally friendly approach for...
The electrochemical nitrogen reduction reaction (NRR) to ammonia (NH₃) is a potentially carbon‐neutr...
To tune single-atom catalysts (SACs) for effective nitrogen reduction reaction (NRR), we investigate...
Single- and double-atom catalysts are normally with high activity and selectivity in N2 electroreduc...
Electrochemical nitrogen-to-ammonia conversion by the nitrogen reduction reaction (NRR) under ambien...
The electrocatalytic N₂ reduction reaction (eNRR) – which can occur under ambient conditions with re...
Vacancy engineering has been proved repeatedly as an adoptable strategy to boost electrocatalysis, w...
The artificial nitrogen (N2) reduction reaction (NRR) via electrocatalysis is a newly developed meth...
The ambient electrochemical N2 reduction reaction (NRR) is a future approach for the artificial NH3 ...
Production of ammonia through an electrochemical process suffers from two challenging issues, namely...
Large-scale ammonia synthesis under ambient environment is a highly demanding technology which is pr...
The MXene‐supported single transition metal systems have been reported as promising electrocatalysts...
The conversion of nitrogen to ammonia offers a sustainable and environmentally friendly approach for...
MXenes, an emerging family of two-dimensional (2D) metal carbides and nitrides, have been demonstrat...
The electrochemical nitrogen reduction reaction (NRR) over single-atom catalysts (SACs) anchored on ...
The conversion of nitrogen to ammonia offers a sustainable and environmentally friendly approach for...
The electrochemical nitrogen reduction reaction (NRR) to ammonia (NH₃) is a potentially carbon‐neutr...
To tune single-atom catalysts (SACs) for effective nitrogen reduction reaction (NRR), we investigate...
Single- and double-atom catalysts are normally with high activity and selectivity in N2 electroreduc...
Electrochemical nitrogen-to-ammonia conversion by the nitrogen reduction reaction (NRR) under ambien...
The electrocatalytic N₂ reduction reaction (eNRR) – which can occur under ambient conditions with re...
Vacancy engineering has been proved repeatedly as an adoptable strategy to boost electrocatalysis, w...