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Rational dual-state silver modulation in perovskite oxides enabling advanced water oxidation electrocatalysis

  • Kaitao Li
  • , Xintong Lv
  • , Shimin Lai
  • , Feifei Dong
  • , Yufei Ma
  • , Zhan Lin
  • Guangdong University of Technology
  • Jieyang Branch of Chemistry and Chemical Engineering Guangdong Laboratory (Rongjiang Laboratory)
  • National Institute of Chemistry

科研成果: 期刊稿件文章同行评审

3 引用 (Scopus)

摘要

Perovskite oxides have garnered considerable attention as promising electrocatalysts for the oxygen evolution reaction (OER) owing to their economic viability, structural tunability, and robust stability. Nevertheless, their intrinsically sluggish kinetics of OER severely limits the overall efficiency of electrocatalytic water splitting. This challenge underscores the urgent need to further optimize perovskite catalysts toward faster reaction kinetics and reliable long-term operation. To this end, a silver-modified perovskite oxide, Sr0.9Ag0.1Co0.7Fe0.3O3-δ (SACF10), is strategically designed through introducing Ag into the A-site to enhance electrocatalytic performance. Notably, silver species in SACF10 coexist as Ag+ ions incorporated into the lattice and metallic Ag nanoparticles dispersed on the surface, forming a synergistic dual-state configuration that enhances oxygen vacancy formation and accelerates charge transport. As a result, SACF10 outperforms the pristine SrCo0.7Fe0.3O3-δ and other Ag-modified compositions in terms of intrinsic activity, mass activity, and long-term durability, thereby highlighting its superior catalytic characteristics. Furthermore, its practical applicability is validated through overall water splitting tests in a two-electrode configuration, where the assembled electrolyzer exhibits excellent activity and operational stability. This work establishes a promising strategy for OER catalyst design by leveraging the synergistic interplay between ionic and metallic silver species within perovskite frameworks, thereby providing new insights into the rational construction of multi-state active centers for advanced electrocatalysis.

源语言英语
期刊论文编号122365
期刊Chemical Engineering Science
320
DOI
出版状态已出版 - 15 1月 2026
已对外发布

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