In Situ Quantification of Hydrogen Radicals Disentangles Direct and Hydrogen‐Radical‐Mediated Pathways in Green Ammonia Electrosynthesis From Nitrate

G 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) A 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) M Marco Flores (School of Molecular Sciences Arizona State University Tempe Arizona USA) M Manuel A. Roldan (Eyring Materials Center Arizona State University Tempe Arizona USA) C 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) S 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)

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

Volume / Issue Vol. 1, Issue 1
Published July 02, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (6)

G

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

A

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

M

Marco Flores

School of Molecular Sciences Arizona State University Tempe Arizona USA

M

Manuel A. Roldan

Eyring Materials Center Arizona State University Tempe Arizona USA

C

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

S

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