Design challenges in bimetallic molecular catalysts for electrochemical nitrate reduction to ammonia revealed by FePc-CuPc as a case study

Electrochemical reduction of nitrate (NO 3 − ) to ammonia (NH 3 ) is a promising approach for sustainable nitrogen-cycle remediation and green NH 3 synthesis. Bimetallic molecular catalysts combining two active sites offer a potential route to enhanced activity and selectivity, yet their rational design remains challenging. Here, we report a series of iron phthalocyanine (FePc) and copper phthalocyanine (CuPc) catalysts supported on carbon nanotubes (CNTs) and identify fundamental limitations in their cooperative function. The 2FePc:1CuPc/CNT achieved a Faradaic efficiency of 91.1% and a maximum NH 3 partial current density of 66.3 mA cm −2 . Density functional theory calculations show that NO 3 − reduction is energetically more favorable on Fe than on Cu sites. In situ X-ray absorption spectroscopy reveals that Fe sites retain their molecular coordination under operating conditions, whereas Cu sites undergo irreversible reduction to metallic clusters. These findings expose two critical design challenges in bimetallic molecular catalysts: uncontrolled spatial distribution of active sites and instability of the Cu component under reductive conditions.

Authors

Institutions

Publication Details

Journal
Cell Reports Physical Science
Published
2026-09-16
DOI
https://doi.org/10.1016/j.xcrp.2026.103539
Primary Topic
Ammonia Synthesis and Nitrogen Reduction
Type
article
Field-Weighted Citation Impact
0.00

Funders

Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Design challenges in bimetallic molecular catalysts for electrochemical nitrate reduction to ammonia revealed by FePc-CuPc as a case study

Reza Eslami, Ashkan Irannezhad, Drew Higgins, Amy Wuttke et al.
Cell Reports Physical Science
Ammonia Synthesis and Nitrogen Reduction
article

Design challenges in bimetallic molecular catalysts for electrochemical nitrate reduction to ammonia revealed by FePc-CuPc as a case study

Reza Eslami, Ashkan Irannezhad, Drew Higgins, Amy Wuttke, Alexander Bagger, Anja Schouten, Katrina Pegrum, Navid Noor, Amirhossein Rakhsha, Rebecca Frise, Shayan Angizi, Leah Pare, Siddhant Singh, Caio Miranda Miliante, Clara Argentino
article en

Abstract

Electrochemical reduction of nitrate (NO 3 − ) to ammonia (NH 3 ) is a promising approach for sustainable nitrogen-cycle remediation and green NH 3 synthesis. Bimetallic molecular catalysts combining two active sites offer a potential route to enhanced activity and selectivity, yet their rational design remains challenging. Here, we report a series of iron phthalocyanine (FePc) and copper phthalocyanine (CuPc) catalysts supported on carbon nanotubes (CNTs) and identify fundamental limitations in their cooperative function. The 2FePc:1CuPc/CNT achieved a Faradaic efficiency of 91.1% and a maximum NH 3 partial current density of 66.3 mA cm −2 . Density functional theory calculations show that NO 3 − reduction is energetically more favorable on Fe than on Cu sites. In situ X-ray absorption spectroscopy reveals that Fe sites retain their molecular coordination under operating conditions, whereas Cu sites undergo irreversible reduction to metallic clusters. These findings expose two critical design challenges in bimetallic molecular catalysts: uncontrolled spatial distribution of active sites and instability of the Cu component under reductive conditions.

Cell Reports Physical ScienceVol. 7(10)
Technical University of Denmark (DK), McMaster University (CA)
Novo Nordisk Fonden, Natural Sciences and Engineering Research Council of Canada
Openalex Percentile: Top 31%
Ammonia Synthesis and Nitrogen Reduction
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.