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March 7, 2026Nano-Micro Letters5 citationsOpen Access

Modulation of the Spin State of Atomic Fe-N4 Sites with Interlayer-Adjacent Ir-N4 for Superior ORR Activity

YTYan TanALAoshuang LiYWYijie Wang

Key Points

  • The research aims to enhance the oxygen reduction reaction activity of bimetallic catalysts through spin state modulation.
  • Utilized density functional theory calculations for catalyst prediction and screening.
  • Designed and synthesized bimetallic single atom catalysts on 3D ordered macroporous carbon.
  • Conducted experimental characterizations and theoretical analyses of the catalysts.
  • Ir-N4/Fe-N4 bimetallic single-atom catalysts showed superior ORR activity with a half-wave potential of 0.928 V.
  • The catalysts achieved a high discharge power density of 314 mW cm⁻² in Zn-air batteries.
  • Marked cycling stability was observed with approximately 1650 cycles over 550 hours.

Abstract

Development of efficient and durable oxygen reduction reaction (ORR) electrocatalysts is of great interest yet remains challenging. Herein, we predicted and screened a bilayer graphite carbon-supported Ir-N4/Fe-N4 catalyst with high ORR activity using density functional theory calculations. Subsequently, various bimetallic single atom supported on 3D ordered macroporous carbon were rationally designed and experimentally synthesized via a colloidal microsphere template-confined reaction method. As anticipated, the resulting Ir-N4/Fe-N4 bimetallic single-atom catalysts (IrFe-SACs) exhibit superior ORR activity and durability, reaching a half-wave potential of 0.928 V. The IrFe-SACs also demonstrate outstanding performance in Zn-air batteries, including a high discharge power density (314 mW cm⁻2) and excellent cycling stability (~ 1650 cycles over 550 h). Further experimental characterizations and theoretical analysis reveal that introducing interlayer-adjacent Ir-N4 sites facilitates the transition of Fe-N4 from a low-spin state to a medium-spin state, which optimizes the spin polarization of Fe 3d orbitals and enhances the non-localization of the Fe-O/OH molecular orbital, thereby significantly improving the ORR intrinsic activity and durability of atomic Fe-N4 sites.

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Cite This Study

Tan et al. (2026) studied this question.

synapsesocial.com/papers/69abc1a65af8044f7a4ea869https://doi.org/10.1007/s40820-026-02108-9
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