The Intricate Sabatier Optimality of Anion Electroreduction and Its Consequences for Nitrate Reduction

M Mattia Salomone (Nano‐Bio Spectroscopy Group, European Theoretical Spectroscopy Facility (ETSF), Department of Advanced Materials and Polymers: Physics, Chemistry and Technology University of the Basque Country UPV/EHU San Sebastián Spain) I Ioannis Katsounaros (Faculty of Sciences School of Chemistry Aristotle University of Thessaloniki Thessaloniki Greece) F Federico Calle‐Vallejo (Nano‐Bio Spectroscopy Group, European Theoretical Spectroscopy Facility (ETSF), Department of Advanced Materials and Polymers: Physics, Chemistry and Technology University of the Basque Country UPV/EHU San Sebastián Spain)

Abstract

ABSTRACT The Sabatier principle is arguably among the most extended concepts in catalysis. It molded the idea of optimality as a balance between two undesired extremes of strong and weak binding. In electrocatalysis, Sabatier‐type volcano plots have had tremendous success for reactions with coupled proton‐electron transfers involving neutral reactants. However, we show here that the concept ought to be revised when charged reactants are involved. Specifically, we analyze anion electroreduction mediated by specific anion adsorption. We observe drastic changes in free‐energy diagrams and volcano plots compared to the reduction of neutral species: Specific adsorption is destabilized by the potential, the subsequent hydrogenation is potential‐independent, and the next step is stabilized by the potential. Consequently, volcano plots become mobile, such that strong and weak binding turn into potential‐dependent notions. We illustrate these intriguing phenomena for nitrate electroreduction on transition metals, a promising yet currently suboptimal electrocatalytic process for wastewater treatment.

Article Details

Volume / Issue Vol. 65, Issue 26
Published June 22, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (3)

M

Mattia Salomone

Nano‐Bio Spectroscopy Group, European Theoretical Spectroscopy Facility (ETSF), Department of Advanced Materials and Polymers: Physics, Chemistry and Technology University of the Basque Country UPV/EHU San Sebastián Spain

I

Ioannis Katsounaros

Faculty of Sciences School of Chemistry Aristotle University of Thessaloniki Thessaloniki Greece

F

Federico Calle‐Vallejo

Nano‐Bio Spectroscopy Group, European Theoretical Spectroscopy Facility (ETSF), Department of Advanced Materials and Polymers: Physics, Chemistry and Technology University of the Basque Country UPV/EHU San Sebastián Spain