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Engineered Atom-Particle Coupling in Dice-Like Hollow Carbon Cages Accelerates Oxygen Electrocatalysis for Efficient Zinc-Air Batteries.

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PubMed DOI OpenAlex 마지막 보강 2026-04-30
OpenAlex 토픽 · Electrocatalysts for Energy Conversion Advanced battery technologies research CO2 Reduction Techniques and Catalysts

Wang S, Xing S, Wang Z, Li C, Sun X, Qiu J

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Sluggish oxygen electrocatalytic kinetics and diffusion limitations remain key barriers to high-performance zinc-air batteries (ZABs).

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APA Shujun Wang, Shuo Xing, et al. (2026). Engineered Atom-Particle Coupling in Dice-Like Hollow Carbon Cages Accelerates Oxygen Electrocatalysis for Efficient Zinc-Air Batteries.. Nano letters. https://doi.org/10.1021/acs.nanolett.6c00844
MLA Shujun Wang, et al.. "Engineered Atom-Particle Coupling in Dice-Like Hollow Carbon Cages Accelerates Oxygen Electrocatalysis for Efficient Zinc-Air Batteries.." Nano letters, 2026.
PMID 41974614 ↗

Abstract

Sluggish oxygen electrocatalytic kinetics and diffusion limitations remain key barriers to high-performance zinc-air batteries (ZABs). Herein, we report a dice-like Co/N codoped hollow carbon cage catalyst (Co/N-HCC) featuring efficient atom-particle coupled Co single atoms and nanoparticles (Co&Co) confined within a hierarchically porous framework via a self-templated surface-confinement strategy. Calculations and in situ spectroelectrochemical experiments suggest that the atom-particle electronic coupling triggers substantial interfacial charge redistribution and tunes the d-band center of Co-N moieties, thereby regulating oxygenated intermediate adsorption and accelerating interfacial electron transfer. Remarkably, the tailored Co/N-HCC achieved superior bifunctional electrocatalytic activity with a low potential gap of 0.63 V in alkaline media. Furthermore, the Co/N-HCC-based ZAB delivers a high peak power density of 269.1 mW cm, a specific capacity of 813.6 mAh g, and robust cycling durability. This work elucidates a mechanistic paradigm for integrating atom-particle electronic coupling with hierarchical porosity toward advanced oxygen electrocatalysts.

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