Manganese‐Cobalt Oxides on Carbon Paper Self‐Supported Electrodes With Bimetallic Synergy and Oxygen Vacancies for Highly Efficient Water Oxidation

The development of efficient and durable non‐noble metal electrocatalysts for the acidic oxygen evolution reaction (OER) remains a critical challenge due to the sluggish four‐electron kinetics and the reliance on scarce iridium/ruthenium‐based materials. Herein, we report a facile one‐step calcination method to fabricate self‐supported manganese‐cobalt oxide electrodes on carbon paper (MnCoO x /CP) with tailored oxygen vacancies (O v ) and electronic structures. By systematically optimizing the calcination temperature, holding time, and Mn/Co ratio, we achieve synergistic regulation of morphology, defect concentration, and catalytic activity. The optimal MnCoO x /CP electrode delivers competitive acidic OER performance, with low overpotentials of 310.6 and 377.6 mV at 10 and 50 mA cm −2 in 0.5 M H 2 SO 4 , respectively. Moreover, it exhibits excellent long‐term stability with only a 1.6% potential increase after 25 h at 50 mA cm −2 , and superior dual‐pH adaptability (136.5 mV at 10 mA cm −2 in alkaline medium). The enhanced performance is attributed to strong Mn–Co electronic interaction, abundant oxygen vacancies, and mixed‐valence states, which remarkably accelerate charge transfer and optimize the adsorption energy of OER intermediates. This work provides a truly low‐cost, scalable strategy for designing high‐performance nonnoble metal oxide electrocatalysts for wide‐pH water splitting.

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Journal
Advanced Synthesis & Catalysis
Published
2026-09-25
DOI
https://doi.org/10.1002/adsc.70776
Primary Topic
Electrocatalysts for Energy Conversion
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article
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article

Manganese‐Cobalt Oxides on Carbon Paper Self‐Supported Electrodes With Bimetallic Synergy and Oxygen Vacancies for Highly Efficient Water Oxidation

Jian‐Wen Shi, Jun Li, Yu Chen, Jing Wang et al.
Advanced Synthesis & Catalysis
Electrocatalysts for Energy Conversion
article

Manganese‐Cobalt Oxides on Carbon Paper Self‐Supported Electrodes With Bimetallic Synergy and Oxygen Vacancies for Highly Efficient Water Oxidation

Jian‐Wen Shi, Jun Li, Yu Chen, Jing Wang, Jinfan Zhang, Mingyang Li, Xiangxin Nie, Qingshuang Wu, Dandan Ma, Yufei Jia, Jinle Guo
article en

Abstract

The development of efficient and durable non‐noble metal electrocatalysts for the acidic oxygen evolution reaction (OER) remains a critical challenge due to the sluggish four‐electron kinetics and the reliance on scarce iridium/ruthenium‐based materials. Herein, we report a facile one‐step calcination method to fabricate self‐supported manganese‐cobalt oxide electrodes on carbon paper (MnCoO x /CP) with tailored oxygen vacancies (O v ) and electronic structures. By systematically optimizing the calcination temperature, holding time, and Mn/Co ratio, we achieve synergistic regulation of morphology, defect concentration, and catalytic activity. The optimal MnCoO x /CP electrode delivers competitive acidic OER performance, with low overpotentials of 310.6 and 377.6 mV at 10 and 50 mA cm −2 in 0.5 M H 2 SO 4 , respectively. Moreover, it exhibits excellent long‐term stability with only a 1.6% potential increase after 25 h at 50 mA cm −2 , and superior dual‐pH adaptability (136.5 mV at 10 mA cm −2 in alkaline medium). The enhanced performance is attributed to strong Mn–Co electronic interaction, abundant oxygen vacancies, and mixed‐valence states, which remarkably accelerate charge transfer and optimize the adsorption energy of OER intermediates. This work provides a truly low‐cost, scalable strategy for designing high‐performance nonnoble metal oxide electrocatalysts for wide‐pH water splitting.

Advanced Synthesis & CatalysisVol. 368(19)
Xi'an Jiaotong University (CN)
Openalex Percentile: Top 30%
Electrocatalysts for Energy Conversion
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Manganese‐Cobalt Oxides on Carbon Paper Self‐Supported Electrodes With Bimetallic Synergy and Oxygen Vacancies for Highly Efficient Water Oxidation — Jian‐Wen Shi, Jun Li, et al. · Advanced Synthesis & Catalysis (2026) | TGRS Research Map | TGRS