4.8 Article

Metal Substitution Steering Electron Correlations in Pyrochlore Ruthenates for Efficient Acidic Water Oxidation

期刊

ACS NANO
卷 15, 期 5, 页码 8537-8548

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.1c00266

关键词

pyrochlore ruthenate; electron correlations; cationic substitution; acidic OER; charge transfer; chemical affinity

资金

  1. Research Grant Council of Hong Kong [N_PolyU540/17]
  2. Hong Kong Polytechnic University [W144]
  3. Science, Technology and Innovation Commission of Shenzhen [JCYJ20180507183424383]

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This study successfully improves the OER activity of pyrochlore ruthenate in acidic media by partially substituting Y3+ ions, achieving high intrinsic mass activity and excellent stability. By manipulating the electronic states to enhance Ru-O covalency and rearrange band alignment, the charge transfer energy is reduced, promoting the occurrence of chemical reactions.
Exploring the advanced oxygen evolution reaction (OER) electrocatalysts is highly desirable toward sustainable energy conversion and storage, yet improved efficiency in acidic media is largely hindered by its sluggish reaction kinetics. Herein, we rationally manipulate the electronic states of the strongly electron correlated pyrochlore ruthenate Y2Ru2O7 alternative through partial A-site substitution of Sr2+ for Y3+, efficiently improving its intrinsic OER activity. The optimized Y1.7Sr0.3Ru2O7 candidate observes a highly intrinsic mass activity of 1018 A g(Ru)(-1) at an overpotential of 300 mV with excellent durability in 0.5 M H2SO4 electrolyte. Combining synchrotron-radiation X-ray spectroscopic investigations with theoretical simulations, we reveal that the electron correlations in the Ru 4d band are weakened through coordinatively geometric regulation and charge redistribution by the exotic Sr2+ cation, enabling the delocalization of Ru 4d electrons via an insulator-to-metal transition. The induced Ru-O covalency promotion and band alignment rearrangement decreases the charge transfer energy to accelerate interfacial charge transfer kinetics. Meanwhile, the chemical affinity of oxygen intermediates is also rationalized to weaken the metal-oxygen binding strength, thus lowering the energy barrier of the overall reaction. This work offers fresh insights into designing advanced solid-state electrocatalysts and underlines the versatility of electronic structure manipulation in tuning catalytic activity.

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