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April 10, 2026Carbon Energy0 citationsOpen Access

Tailoring Se‐Mediated Co‐Co Dual‐Atom Sites for Oxygen and Iodide Electrocatalysis Toward High‐Efficiency and Ultradurable Zinc‐Air/Iodide Hybrid Batteries

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HPHuaipeng PangOcean University of ChinaXJXueli JiOcean University of ChinaYLYuhao LiuOcean University of China

Key Points

  • The aim is to enhance the performance of zinc-air/iodide hybrid batteries by optimizing dual-atom catalytic sites.
  • Developed a hollow-structured multi-asymmetric Co dual-atom catalyst mediated by selenium.
  • Tested performance using an iodide/iodate redox couple.
  • Conducted operando spectroscopy and density functional theory calculations to study reaction pathways.
  • Achieved a half-wave potential of 0.90 V for oxygen reduction and 1.265 V for iodide oxidation.
  • Obtained a potential gap of just 0.365 V, indicating high efficiency.
  • Demonstrated exceptional cycling stability exceeding 1150 hours with 77% energy efficiency at 10 mA cm−2.

Abstract

ABSTRACT Rechargeable zinc‐air batteries are severely limited by the sluggish oxygen evolution reaction (OER), which induces large overpotentials and poor cycle life. Here, we report a high‐performance zinc‐air/iodide hybrid battery (ZAIHB) that circumvents the OER bottleneck by introducing an efficient iodide/iodate (I − /IO 3 − ) redox couple, integrated with a rationally designed hollow‐structured multi‐asymmetric Co dual‐atom catalyst mediated by selenium (H‐CoSe‐NC). The atomic‐level Co‐Se d‐p orbital hybridization enables dynamic charge redistribution, forming adaptive adsorption sites that significantly enhance oxygen reduction (0.90 V half‐wave potential) and iodide oxidation (1.265 V at 10 mA cm −2 ), yielding a record‐low potential gap of 0.365 V. The resulting ZAIHB delivers exceptional cycling stability exceeding 1150 h with an energy efficiency of 77% at 10 mA cm −2 , and superior durability over state‐of‐the‐art hybrid systems. Operando spectroscopy and density functional theory calculations uncover that Se‐induced distortion of Co‐Co dual sites and electronic reconfiguration modulate the reaction pathways from OOH* to OH*–OH* intermediates and stabilize I*–I* adsorption, effectively lowering activation barriers. This study pioneers a versatile atomic‐scale electronic modulation strategy, offering a new paradigm for designing multi‐redox battery systems with minimized polarization losses and extended durability.

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Cite This Study

Pang et al. (2026) studied this question.

synapsesocial.com/papers/69d896166c1944d70ce07582https://doi.org/10.1002/cey2.70221
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

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  3. 3Closed‐Loop Iodine‐Oxygen Electrochemistry for High‐Reversibility Neutral Zinc–Air Hybrid Batteries2025
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