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January 20, 2026Angewandte Chemie International Edition13 citations

Pulse‐Electrodeposited Single‐Atom Alloys with Steered Surface Hydrogenation Dynamics for Air‐to‐Fertilizer Synthesis

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MYMei YiPWPengfei WangRSRongguang Shi

Key Points

  • The study aims to enhance the efficiency of nitrate-to-ammonia conversion using NiCu single-atom alloys as catalysts.
  • Utilized pulse electrodeposition to create atomically dispersed NiCu single-atom alloys
  • Applied in situ surface-interrogation scanning electrochemical microscopy (SI-SECM) for real-time monitoring
  • Examined the dynamics of *H generation and *NO x hydrogenation rate constants
  • Conducted theoretical analyses to validate the catalytic mechanisms
  • Achieved a maximum Faradaic efficiency of approximately 95%
  • Obtained a yield rate of around 11.4 mg h−1 cm−2
  • Demonstrated that Ni doping reduced barriers for hydrogen formation and NO x hydrogenation
  • Showed a plasma-electrochemical CO2 capture system effectively converts air to fertilizer with lower energy consumption

Abstract

Abstract Harnessing renewable electricity to transform abundant environmental resources into fertilizers is central to sustainable development. Electrochemical nitrate‐to‐ammonia conversion provides a promising route, yet its efficiency is constrained by the elusive surface hydrogenation dynamics governing multi‐step *NO x reduction. Here, a cooperative descriptor (Ψ) derived from large‐language‐models‐assisted mining and energetic analysis successfully identifies NiCu single‐atom alloys (SAAs) as optimal catalysts. Pulse electrodeposition delivers atomically dispersed alloys with tunable structures, achieving a maximum Faradaic efficiency (FE) of ∼95% and yield rate (YR) of ∼11.4 mg h −1 cm −2 . In situ surface‐interrogation scanning electrochemical microscopy (SI‐SECM) provides quantitative information on the time‐resolved surface‐active hydrogen (*H) generation‐consumption and *NO x hydrogenation rate constants (NiCu > CoCu ≫ MnCu ≈ FeCu > Cu), directly aligning surface kinetics with selectivity. Theoretical investigations further confirmed that Ni doping lowers the barriers for *H formation and *NO x hydrogenation. A plasma‐electrochemical‐CO 2 capture system demonstrated continuous “air‐to‐fertilizer” conversion with reduced energy consumption and potential net‐negative emissions. These results establish a transferable design rule that bridges theoretical descriptors with operando hydrogenation dynamics, providing a mechanistic foundation and practical pathway toward scalable, zero‐carbon fertilizer production.

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Cite This Study

Yi et al. (2026) studied this question.

synapsesocial.com/papers/696f1ac19e64f732b51ef05chttps://doi.org/10.1002/anie.202521345
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