Abstract
The fabrication of efficient, low-cost, and stable bifunctional oxygen catalysts is crucial for zinc–air batteries (ZABs). High-entropy materials have emerged to possess great potential as oxygen reduction reaction (ORR)/oxygen evolution reaction (OER) bifunctional catalysts for ZABs, but its efficient synthesis with superior activity remains challenging. Herein, a rapid and facile microwave-induced carbon thermal shock technique was developed to efficiently synthesize high-entropy oxide (HEO) nanoparticles, i.e., (FeCoNiCrMn)3O4, that are uniformly anchored onto carbon nanotubes (CNT), denoted as (FeCoNiCrMn)3O4/CNT. The obtained (FeCoNiCrMn)3O4/CNT can work as a bifunctional catalyst, exhibiting excellent performance with the OER overpotential of 273 mV at 10 mA cm−2 and the ORR half-wave potential of 0.771 V. Moreover, the ZAB assembled with (FeCoNiCrMn)3O4/CNT as the cathode demonstrates superior performance, with high specific capacity (828.8 mAh gZn−1), energy density (986.3 Wh kgZn−1), and outstanding long-term durability exceeding 500 h. This work offers a scalable strategy in efficient construction of CNT-supported HEO nanomaterials, thus facilitating the development of high-efficiency electrocatalysts for practical ZAB applications.
| Original language | English |
|---|---|
| Article number | e70323 |
| Journal | Batteries and Supercaps |
| Volume | 9 |
| Issue number | 5 |
| DOIs | |
| Publication status | Published - May 2026 |
| Externally published | Yes |
Keywords
- high-entropy oxides
- microwave-induced carbon thermal shock
- oxygen evolution
- oxygen reduction
- zinc–air battery
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