The Effect of Applied Potential on the Li-mediated Nitrogen Reduction Reaction Performance

B Boaz Izelaar (Department of Process and Energy, Faculty of Mechanical Engineering, Delft University of Technology, Leeghwaterstraat 39, Delft 2628CB, The Netherlands) P Pranav Karanth (Section Storage of Electrochemical Energy, Radiation Science and Technology, Faculty of Applied Sciences) A Arash Toghraei S Santosh K. Pal N Nandalal Girichandran M Mark Weijers (Department of Chemical Engineering, Faculty of Applied Sciences, Delft University of Technology, Van der Maasweg 9, Delft 2629HZ, The Netherlands) R Ruud W. A. Hendrikx F Fokko M. Mulder (Department of Chemical Engineering, Faculty of Applied Sciences, Delft University of Technology, Van der Maasweg 9, Delft 2629HZ, The Netherlands) R Ruud Kortlever (Large-Scale Energy Storage, Process & Energy Department, Faculty of Mechanical Engineering, Delft University of Technology, Leeghwaterstraat 39, Delft 2628 CB, The Netherlands)

Abstract

Abstract The Li-mediated nitrogen reduction reaction (Li-NRR) has been proposed as one of the most promising ambient production routes for green ammonia. However, the effect of the applied potential ( E we ) on the reaction performance and the properties of the solid electrolyte interphase (SEI) remain poorly understood. Herein, we combine potential controlled experiments using a reliable Li x FePO 4 based reference electrode with post-mortem SEI characterization techniques, wherein we observe both an increase in the LiF concentration in the SEI, originating from LiTFSI decomposition, and the Faradaic efficiency (FE NH3 ) with an increasing E we . The transition from a predominantly organic SEI at low E we (āˆ’3.2 V SHE ) to a LiF-enriched layer at higher E we indicates the existence of kinetic barriers for the SEI formation reactions. Moreover, thicker and denser SEI structures observed at a higher E we enhance the Li-NRR by improving the mass transport regulation between reactant species. However, these thicker and denser SEI morphologies lead to current instabilities due to dynamic SEI thickening and breakdown.

Article Details

Volume / Issue Vol. 16, Issue 1
Published November 27, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (9)

B

Boaz Izelaar

Department of Process and Energy, Faculty of Mechanical Engineering, Delft University of Technology, Leeghwaterstraat 39, Delft 2628CB, The Netherlands

P

Pranav Karanth

Section Storage of Electrochemical Energy, Radiation Science and Technology, Faculty of Applied Sciences

A

Arash Toghraei

S

Santosh K. Pal

N

Nandalal Girichandran

M

Mark Weijers

Department of Chemical Engineering, Faculty of Applied Sciences, Delft University of Technology, Van der Maasweg 9, Delft 2629HZ, The Netherlands

R

Ruud W. A. Hendrikx

F

Fokko M. Mulder

Department of Chemical Engineering, Faculty of Applied Sciences, Delft University of Technology, Van der Maasweg 9, Delft 2629HZ, The Netherlands

R

Ruud Kortlever

Large-Scale Energy Storage, Process & Energy Department, Faculty of Mechanical Engineering, Delft University of Technology, Leeghwaterstraat 39, Delft 2628 CB, The Netherlands