Ultrastable and highly active Co-vacancies-enriched IrCo bifunctional nanoalloys for proton exchange membrane water electrolysis.

J Colloid Interface Sci

Key Laboratory for Green Chemical Technology of the Ministry of Education, School of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, China; Haihe Laboratory of Sustainable Chemical Transformations, Tianjin 300192, China; Zhejiang Institute of Tianjin University, Ningbo, Zhejiang, 315201, China. Electronic address:

Published: May 2024

AI Article Synopsis

  • Researchers developed bifunctional IrCo nanoalloys with metal vacancies for efficient water splitting in proton exchange membrane water electrolyzers (PEMWE), showing potential for industrial use.
  • The IrCo catalysts demonstrated impressive performance, achieving ultra-low overpotentials (238 mV for OER and 18.6 mV for HER) and long-term stability (1000 hours for OER and 100 hours for HER) under acidic conditions.
  • The findings highlight the importance of electronic interactions and in-situ Co vacancies in enhancing the activity and stability of the catalysts, paving the way for innovative designs in PEMWE applications.

Article Abstract

Exploring the electrocatalysts with high intrinsic activity and stability for both anode and cathode to tolerate the extremely acidic condition in proton exchange membrane water electrolyzer (PEMWE) is crucial for widespread industrial application. Herein, we constructed the bifunctional IrCo nanoalloys with abundant metal vacancies via the combination of chemical reduction and electrochemical treatment for overall water splitting. The developed IrCo exhibits ultra-low overpotentials of 238 mV for OER and 18.6 mV for HER at 10 mA cm in 0.1 M HClO, and achieves the exceptional stability of 1000 h for OER and 100 h for HER at 10 mA cm. Further, the cell voltage is only 1.68 V to reach a high current density of 1 A cm in PEMWE with IrCo as the both cathode and anode catalytic layer, and it shows excellent corrosion resistance in acidic environment, evidenced by 415 h stable operation at 1 A cm. The strong electronic interactions in the Ir-Co atomic heterostructure and the in-situ generation of Co vacancies by electrochemical oxidation synergistically contribute to the enhanced activity and stability via optimizing the electronic structure of adjacent Ir active sites, enhancing the conductivity and electrochemical active surface area of the catalyst, accelerating charge transfer and kinetics. This work provides a new perspective for designing bifunctional catalysts for practical application in PEMWE.

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http://dx.doi.org/10.1016/j.jcis.2024.01.151DOI Listing

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