In Situ Quantification of Hydrogen Radicals Disentangles Direct and Hydrogen‐Radical‐Mediated Pathways in Green Ammonia Electrosynthesis From Nitrate
Abstract
ABSTRACT The electrochemical reduction of nitrate (ERN) to ammonia (NH 3 ) has attracted increasing attention as a sustainable route for nitrogen recovery and green ammonia production, enabled by major advances in electrocatalyst design over the past decade. Two mechanistic pathways are generally well‐recognized: direct electron transfer and a hydrogen radical (H*)‐mediated mechanism. However, the latter remains difficult to quantify under practical electrochemical conditions, limiting mechanistic comparison across catalyst configurations. Herein, Ni/Co, Ni/Pt, and Ni/Pt/Co electrocatalysts were investigated to elucidate the interplay between direct and indirect ERN pathways. Quantitative electron spin resonance (ESR) measurements of H* under ERN‐relevant conditions, combined with bulk electrolysis in the absence and presence of an H* scavenger, enabled direct correlation between H* availability and NH 3 production. Ni/Co predominantly follows direct electron transfer, whereas Ni/Pt transitions to an H*‐mediated regime above a threshold current density. In contrast, Ni/Pt/Co exhibits synergistic behavior in which both pathways coexist. Moreover, the H* role varies with electrocatalyst chemical composition, facilitating either NO 3 − activation or NO 2 − hydrogenation. These findings establish a quantitative framework for resolving H*‐mediated contribution in ERN and provide mechanistic design principles applicable to other electrocatalytic hydrogenation reactions.
Article Details
Authors (6)
Gabriel A. Cerrón‐Calle
Nanosystems Engineering Research Center for Nanotechnology‐Enabled Water Treatment – School of Sustainable Engineering and the Built Environment Arizona State University Tempe Arizona USA
Andrea N. Arias‐Sanchez
Nanosystems Engineering Research Center for Nanotechnology‐Enabled Water Treatment – School of Sustainable Engineering and the Built Environment Arizona State University Tempe Arizona USA
Marco Flores
School of Molecular Sciences Arizona State University Tempe Arizona USA
Manuel A. Roldan
Eyring Materials Center Arizona State University Tempe Arizona USA
Carlos M. Sánchez‐Sánchez
Nanosystems Engineering Research Center for Nanotechnology‐Enabled Water Treatment – School of Sustainable Engineering and the Built Environment Arizona State University Tempe Arizona USA
Sergi Garcia‐Segura
Nanosystems Engineering Research Center for Nanotechnology‐Enabled Water Treatment – School of Sustainable Engineering and the Built Environment Arizona State University Tempe Arizona USA