Ammonia Synthesis and Nitrogen Reduction Peer reviewed

Modulating the Spin State of Co 3+ to Promote Ampere‐Level Electrosynthesis of Ammonia

Shuailei Pu, Qiang Yang, Chenhao Pei, Zhiqiang Li and 3 more

Advanced Functional Materials | Aug 11, 2026

Abstract

Abstract

ABSTRACT Ammonia electrosynthesis via nitrate reduction offers a sustainable alternative to Haber–Bosch process, and this reaction involves an initial deoxygenation step from NO 3 − to *NO 2 , followed by successive hydrogenation steps to NH 3 . Previous studies have mainly focused on the hydrogenation steps due to the competitive hydrogen evolution reaction, and overlooked that early‐stage adsorption and activation govern the overall reaction rate. Here we show that modulating the spin state of octahedral Co in Ni‐doped cobalt spinel markedly accelerates nitrate adsorption and activation. The high‐spin HS‐(Co 0.75 Ni 0.25 )Co 2 O x delivers a current density of 1.1 A cm −2 and achieves an ammonia yield rate of 83.64 mg·h −1 ·cm −2 with a Faradaic efficiency of 97.8% at −0.32 V versus RHE, substantially outperforming its low‐spin counterpart (52.53 mg·h −1 ·cm −2 , 94.8%). Operando characterizations combined with theoretical calculations reveal that high‐spin octahedral Co sites optimize orbital hybridization with nitrate and facilitate subsequent reduction steps. This electronic modulation lowers the Gibbs free energy change of the NO 3 − to *NO 2 step by 1.55 eV, substantially reducing the energetic penalty for the initial nitrate activation. This work elucidates a spin‐state‐dependent mechanism for accelerated nitrate deoxygenation kinetics and establishes spin engineering as an effective strategy to promote rate‐limiting steps in tandem electrocatalysis, enabling industrially relevant ammonia electrosynthesis.

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Authors

Researchers on this paper

Shuailei Pu

first | Chinese Academy of Sciences

Qiang Yang

middle | Hong Kong Polytechnic University

Chenhao Pei

middle | Chinese Academy of Sciences | ORCID 0009-0009-0837-1141

Zhiqiang Li

middle | Chinese Academy of Sciences

Liuyong Zhang

middle | Chinese Academy of Sciences

Peixin Cui

middle | Chinese Academy of Sciences | ORCID 0000-0002-9887-2784

Yujun Wang

last | Chinese Academy of Sciences | ORCID 0000-0002-0921-0122

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Citation

BibTeX

@article{Pu2026Modulating,
  title = {Modulating the Spin State of Co 3+ to Promote Ampere‐Level Electrosynthesis of Ammonia},
  author = {Shuailei Pu and Qiang Yang and Chenhao Pei and Zhiqiang Li and Liuyong Zhang and Peixin Cui and Yujun Wang},
  journal = {Advanced Functional Materials},
  year = {2026},
  doi = {10.1002/adfm.77648},
  url = {https://doi.org/10.1002/adfm.77648}
}

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