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Updated: Jul 1, 2026

Electrochemically and Bioelectrochemically Induced Ammonium Recovery
Published on: January 22, 2015
Strategies for Mitigation of Intermediate CO2 Poisoning to Promote Electrocatalytic Efficiency during Urea Oxidation
Sannibha Das1, Prachi Upadhyay1, Akash Joshy1
1Department of Chemical Engineering, Indian Institute of Science Education and Research Bhopal, Bhopal, Madhya Pradesh 462 066, India.
Abstract:
Urea electrolysis plays a key role in various urea waste valorization processes. In this regard, the complex six-electron transfer process, urea oxidation reaction, is the key to achieving maximum efficiency. In this study, we developed multilayered α-Ni-(OH)2 sheets through a sonochemical approach. We used Fe3+ to dope the α-Ni-(OH)2 sheets in three different compositions. The synthesized catalysts were analyzed by using XRD, SEM, EDX, FTIR, and XPS. Using EDX and XPS, successful doping of iron was confirmed. The electrocatalytic activities were characterized by CV, LSV, EIS, and CA techniques. Through CV analysis, it was identified that Fe3+ did not directly participate in the electrochemical reaction; rather, due to high Lewis acidity, it was modulating the electronic environment of Ni2+ ions. Iron doping induced a reduction in the onset potential and synergistically increased the catalytic current by promoting a higher number of active sites for urea adsorption. Tafel analysis concluded that the improved reaction kinetics was due to iron incorporation. Using Nyquist and Bode plots, it was identified that iron doping promoted CO2 production as RDS. Therefore, catalyst poisoning due to prolonged adsorption of CO2 was diminished, and subsequently, catalyst stability was increased. Overall, while Fe3+ doping has proved to be a significant method to enhance catalytic activity, careful optimization of concentration is required to build a state-of-the-art catalytic architecture for urea waste valorization.
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