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Deciphering the Synergy of Multiple Vacancies in High-Entropy Layered Double Hydroxides for Efficient Oxygen Electrocatalysis

  • Yiyue Zhai
  • , Xiangrong Ren
  • , Tao Gan
  • , Liaona She
  • , Qingjun Guo
  • , Na Yang
  • , Bolun Wang
  • , Yao Yao
  • , Shengzhong Liu
  • Xi'an Technological University
  • Shaanxi Normal University
  • CAS - Shanghai Advanced Research Institute
  • University of Electronic Science and Technology of China
  • Jilin University
  • CAS - Dalian Institute of Chemical Physics
  • University of Chinese Academy of Sciences
  • CNNP Optoelectronics Technology

Research output: Contribution to journalArticlepeer-review

53 Scopus citations

Abstract

Layered double hydroxides (LDHs) hold the promise of designing efficient and long-lived electrocatalysts for alkaline oxygen evolution reaction (OER), yet control of their activity and durability at ampere-scale current densities remains a challenge. Here, a high-entropy LDH anode integrating multiple metal and oxygen vacancies is reported that achieves superior and robust OER under industrial conditions. The molar ratio of Ni:Cr:Co:Zn:Fe in high-entropy LDHs engineers the electronic structure via the cocktail effect, yielding more high-valent metal ions that promote the electrochemical restructuring. Using various operando characterizations, the generation of γ-NiOOH active-phase on a high-entropy LDH surface is identified, triggering the oxygen-vacancy-site mechanism (OVSM). Importantly, a volcano relationship is found between intrinsic OER activity (overpotential value) and the local coordination structure of Ni active centers (matching with the ΔG*OH). The integration of multiple metal and oxygen vacancies significantly optimizes the adsorption-free energy of oxygen-containing intermediates that are anchored at Ni active sites, boosting the OVSM. Accordingly, the developed Ni0.15Cr0.15Co0.4Zn0.1Fe0.2-LDH@NF achieves 1 A·cm−2 at 1.81 V and enables stable operation over 300 h in anion exchange membrane water electrolyzer. These findings elucidate the synergistic effects of multiple vacancies in high-entropy LDH electrocatalysts and enlighten the vacancy engineering for designing high-efficiency OER catalysts.

Original languageEnglish
Article number2502065
JournalAdvanced Energy Materials
Volume15
Issue number30
DOIs
StatePublished - 12 Aug 2025
Externally publishedYes

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Keywords

  • OER
  • electrocatalyst
  • high-entropy LDH
  • lattice oxygen
  • vacancy defects

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