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Updated: Sep 17, 2025

Synthesis of Metal Nanoparticles Supported on Carbon Nanotube with Doped Co and N Atoms and its Catalytic Applications in Hydrogen Production
Published on: December 6, 2021
Hydrogen-bond mediated electrocatalytic nitrate reduction to ammonia over metal-organic frameworks with industrial
Xiao-Xue Fu1,2, Hui Guo1,2, Duan-Hui Si1
1State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences Fuzhou 350002 China rcao@fjirsm.ac.cn.
Abstract:
Electrocatalytic reduction of the pollutant nitrate to ammonia (NO3RR) using clean energy is being considered as a viable alternative to the Haber-Bosch process for producing industrially valuable ammonia. However, the multi-electron-proton transfer process of the NO3RR to ammonia usually leads to poor selectivity and low current density, which still cannot meet the industrial requirements. Stabilizing the key intermediates during the reaction is particularly important for achieving high selectivity in the NO3RR towards the production of NH3. Herein, we develop a hydrogen bonding strategy to stabilize the key intermediates of the NO3RR, which involves the design and synthesis of trinuclear copper(i) cluster-based metal-organic frameworks (MOFs). The methyl groups in the copper-based MOFs (DiMe-Cu3-MOF) can regulate the electron density around the Cu3 site and stabilize the key intermediates, *NO2, through hydrogen bonding interaction with methyl groups. Thus, the DiMe-Cu3-MOF electrocatalyst delivers a high NH3 faradaic efficiency (95%) for the NO3RR with a high ammonia production of 401 μg cm-2 h-1, and the partial current density of ammonia reaches an industrial level value of -950.6 mA cm-2. Control experiments and theoretical studies demonstrated that the introduction of methyl groups into the DiMe-Cu3-MOF can facilitate atypical hydrogen bonding with the intermediates of the NO3RR and thus enhance the adsorption of intermediates and reduce the energy barrier of the conversion of NO3 - to NH3. This work highlights the vital importance of adjusting the microenvironment through hydrogen bonding for enhancing the NO3RR performance.
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