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February 2, 2026ACS Nano13 citations

Lattice Expansion Triggers an N -End Adsorption Pathway for Electrocatalytic Nitrate Reduction to Ammonia

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BXBeibei XuYJY. JinSZShijie Zhao

Key Points

  • This research aims to improve electrocatalytic nitrate reduction efficiency using a Co3O4 electrocatalyst with lattice expansion.
  • Incorporation of rare-earth Gd3+ ions into the Co3O4 lattice
  • Investigation of Co-Co bond elongation and cobalt oxidation state changes
  • Assessment of charge density redistribution and electron transfer dynamics
  • Evaluation of Faradaic efficiency and production rates of ammonia
  • Achieved a Faradaic efficiency of 96.2% for NH4+ production at -0.6 V vs RHE
  • Demonstrated a production rate of 5.34 mol·h-1·gcat-1
  • Maintained an industrial-current density of 400 mA·cm-2 at a 1.9 V cell voltage
  • Showed improvements across multiple lanthanides, indicating a universal modulation strategy

Abstract

Electrocatalytic nitrate reduction offers a sustainable route for ammonia synthesis and environmental nitrate removal, yet its practical implementation is hindered by a high overpotential and sluggish reaction kinetics. Herein, we propose a rare-earth-mediated strategy using a typical Co3O4 electrocatalyst that addresses these limitations through deliberate lattice expansion and electronic restructuring. By incorporating rare-earth Gd3+ ions into the Co3O4 lattice, it induces pronounced Co-Co bond elongation (from 2.5 to 2.8 Å) and elevates the cobalt oxidation state. These structural and electronic modifications promote charge density redistribution and facilitate interfacial electron transfer. Consequently, the resultant electronic environment switches the primary active sites from bridge-coordinated cobalt (Cobri) to top-coordinated cobalt (Cotop), favoring a transition from bidentate to N-end adsorption for electrocatalytic nitrate reduction. This reconfiguration stabilizes the critical reaction intermediates and accelerates the hydrogenation kinetics. The optimized Gd-Co3O4 catalyst achieves a Faradaic efficiency of 96.2% for NH4+ production at -0.6 V vs RHE, with a record production rate of 5.34 mol·h-1·gcat-1 and an industrial-current density of 400 mA·cm-2 at a 1.9 V cell voltage. Demonstrated across multiple lanthanides (La, Sm, and Gd), this approach provides a universal electronic modulation strategy to overcome overpotential and kinetic barriers in electrocatalytic nitrate reduction.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/6980fc91c1c9540dea80e6dchttps://doi.org/10.1021/acsnano.5c18452
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