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Updated: Apr 2, 2026

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Operando Cu Aggregation-Induced Spin State Modulation in Fe-Cu Single Atom Catalyst for Enhanced Tandem
Seongin Hong1, Jaewoo Jeong2, Euichan Yoo1
1Department of Chemistry, Seoul National University, Seoul 08826, Republic of Korea.
None:
The electrocatalytic nitrate reduction reaction (NO3RR) provides a sustainable pathway to convert excess nitrate into ammonia, yet realizing high selectivity requires a fundamental understanding of dynamic structural changes occuring at active sites during reactions. Here, we investigate how in situ Cu clustering dynamically activates dual catalytic sites in Fe-Cu bimetallic single-atom catalysts (FeCu-N-C) during NO3RR, through combined density functional theory calculations and operando spectroscopy. Under reductive potentials, atomically dispersed Cu spontaneously aggregates into nanoclusters that efficiently activate NO3-. Concurrently, Cu clustering induces pronounced structural strain and electronic distortion in adjacent Fe-Nx moieties, triggering a spin-state transition in the Fe active site from low-spin to high-spin configuration. This spin modulation dramatically enhances the activity for subsequent NO2- conversion to NH3. The synergistic coupling between Cu clusters and spin-modulated Fe establishes a highly effective tandem pathway, yielding superior NO3RR activity and NH3 selectivity, compared to Cu-N-C and Fe-N-C counterparts. These findings provide new insights into the rational design of advanced multicomponent electrocatalysts with dynamically tunable active site properties.
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