Evolving Electrocatalytic Nitrate-to-Ammonia Conversion on Cu- and Co-Based Catalyst Engineering with Paired Electrolysis Approaches

Abstract

The electrocatalytic nitrate (NO3-) reduction reaction to ammonia (NH3) offers a sustainable pathway for wastewater remediation and distributed NH3 synthesis, presenting a capable alternative to the energy-intensive Haber-Bosch process. Copper (Cu)- and cobalt (Co)-based catalysts are among the most promising for this reaction due to their favourable electronic structure for NO3- activation and cost-effectiveness. However, their propensity for rapid deactivation caused by the strong adsorption of intermediates like *NO that poison active sites remains a primary impediment to high selectivity and stability. This review comprehensively investigates recent breakthroughs in overcoming this limitation through advanced catalyst design strategies specifically for Cu- and Co-based systems. In detail, the protocols were critically examined to regulate intermediate adsorption strength via facet engineering, oxidation state modulation, single-atom dispersion and construction of bimetallic catalysts that provide synergistic *H species to enhance hydrogenation kinetics through optimization of the d-band center of Cu and Co. Furthermore, the innovative tandem catalysis systems and paired electrolysis configurations are also explored to couple NO3- reduction reaction with alternative oxidation reactions (AOR) to drastically improve energy efficiency and economic viability. Therefore, by synthesizing these design principles this review aims to guide the development of next-generation, high-performance and durable Cu-and Co-based electrocatalysts for scalable sustainable nitrogen management.

Article information

Article type
Review Article
Submitted
22 Oct 2025
Accepted
24 Nov 2025
First published
25 Nov 2025

Mater. Horiz., 2025, Accepted Manuscript

Evolving Electrocatalytic Nitrate-to-Ammonia Conversion on Cu- and Co-Based Catalyst Engineering with Paired Electrolysis Approaches

N. Saafie, N. A. Mohamad, W. S. Koh, X. Zeng, S. Y. Kim and W. Ong, Mater. Horiz., 2025, Accepted Manuscript , DOI: 10.1039/D5MH02001H

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