Breaking the Activity-Durability Trade-Off: Fe-Cr Dual-Atom Coupling Enables Highly Active and Long-Lived Oxygen Reduction Catalysts

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Breaking the Activity-Durability Trade-Off: Fe-Cr Dual-Atom Coupling Enables Highly Active and Long-Lived Oxygen Reduction Catalysts
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Springer Nature Singapore
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Neighboring Fe-Cr electronic coupling simultaneously promotes intrinsic activity and suppresses Fe-induced degradation for oxygen reduction electrocatalysis

Fe-N-C catalysts are among the most promising platinum-group-metal-free electrocatalysts for the oxygen reduction reaction (ORR), yet their practical application is limited by the insufficient intrinsic activity of isolated Fe sites and Fe-induced degradation. Herein, a neighboring Fe-Cr dual-atom catalyst (FeCr/N-P-C) is constructed via a one-step pyrolysis strategy. Structural characterizations reveal atomically dispersed neighboring Fe-Cr dual sites with a proposed axial N-Fe1N3-Cr1N3 coordination configuration and strong interatomic electronic coupling. Benefiting from Cr-induced electronic modulation, the Fe sites exhibit a 4.6-fold higher turnover frequency (0.534 s− 1 at 0.80 V) than Fe single atoms, together with an onset potential of 1.01 V. The catalyst also shows an ultralow half-wave potential loss of only 21 mV after 30,000 cycles and retains 85% of its initial current after 8 h. In situ ATR-SEIRAS and mechanistic studies reveal accelerated *OOH conversion and suppressed ROS generation, accounting for the simultaneously enhanced ORR activity and durability. A rechargeable zinc-air battery delivers a peak power density of 187 mW cm− 2 and operates stably for over 150 h. This work demonstrates that neighboring dual-atom electronic coupling can simultaneously promote the intrinsic activity and durability of Fe single-atom catalysts, providing a general strategy for designing efficient and durable ORR electrocatalysts.

In this work, we developed a neighboring Fe-Cr dual-atom catalyst (FeCr/N-P-C) that addresses one of the most persistent challenges in Fe-based oxygen reduction reaction (ORR) catalysts: achieving high catalytic activity without sacrificing durability. By introducing atomically dispersed Cr adjacent to Fe active sites, we established strong Fe-Cr electronic coupling that simultaneously accelerates ORR kinetics and suppresses Fe-induced degradation. As a result, the catalyst delivers outstanding ORR performance and long-term stability, while also demonstrating excellent practical performance in rechargeable zinc-air batteries.

Key Insights

  • Neighboring Fe-Cr dual sites enhance Fe activity through electronic coupling. Structural characterization confirms atomically dispersed Fe-Cr dual-atom sites embedded within an N,P-codoped carbon framework, enabling effective modulation of the Fe electronic structure.
  • Intrinsic ORR activity is significantly improved. FeCr/N-P-C achieves a turnover frequency (TOF) of 0.534 s¹ at 0.80 V, representing a 4.6-fold increase compared with the Fe single-atom catalyst.
  • The catalyst exhibits excellent oxygen reduction performance. An onset potential of 1.01 V and half-wave potential of 0.845 V were achieved, surpassing monometallic Fe and Cr catalysts as well as commercial Pt/C under alkaline conditions.
  • Cr promotes reaction kinetics while reducing degradation pathways. In situ studies reveal faster *OOH conversion together with suppressed peroxide accumulation, leading to more efficient ORR and reduced formation of harmful reactive oxygen species (ROS).
  • Remarkable durability was demonstrated. The catalyst shows only a 21 mV half-wave potential loss after 30,000 cycles and retains 85% of its initial current after 8 hours of continuous operation.
  • Excellent device-level performance was achieved. Rechargeable zinc-air batteries based on FeCr/N-P-C deliver a peak power density of 187 mW cm² and stable cycling for more than 150 hours, outperforming benchmark Pt/C-based systems.

Significance of This Work

In this study, we demonstrate that neighboring Fe-Cr electronic coupling can simultaneously improve the intrinsic activity and operational durability of Fe-based ORR catalysts. The neighboring Cr atom not only promotes oxygen-intermediate conversion but also suppresses Fe-induced Fenton reactions and ROS generation, mitigating catalyst degradation at its source.

Our findings establish Fe-Cr dual-atom engineering as an effective strategy for overcoming the traditional activity-stability trade-off in non-precious-metal electrocatalysts, providing new opportunities for the development of durable, high-performance catalysts for fuel cells, zinc-air batteries, and other sustainable energy technologies.

Authors & Affiliations

Yingying Guo†, Junfeng Wei†, Xiaohong Tan, Yuhang Xiao, Siyun Du, Hao Cui, and Chengxin Wang**
† These authors contributed equally to this work.

School of Materials Science and Engineering, Sun Yat-sen University, Guangzhou 510275, China.

Corresponding Authors

Prof. Hao Cui ✉ cuihao3@mail.sysu.edu.cn
Prof. Chengxin Wang ✉ wchengx@mail.sysu.edu.cn

How to Cite This Article

Guo, Y. et al. (2026). Neighboring Fe-Cr electronic coupling simultaneously promotes intrinsic activity and suppresses Fe-induced degradation for oxygen reduction electrocatalysis. Catal, 2, 17.  https://doi.org/10.1007/s44422-026-00031-z 

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