4.8 Article

Operando Direct Observation of Stable Water-Oxidation Intermediates on Ca2-xIrO4 Nanocrystals for Efficient Acidic Oxygen Evolution

期刊

NANO LETTERS
卷 22, 期 17, 页码 6988-6996

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.2c01777

关键词

iridium-based oxides; electrocatalysis; iridium-rich surface layer; key intermediates; acidic oxygen evolution reaction

资金

  1. National Key Research and Development Program of China [2021YFA1600800]
  2. National Natural Science Foundation of China [11975234, 11775225, U2032150, U1932211, 12075243, 12005227, 12105286]
  3. Users with Excellence Program of Hefei Science Center CAS [2020HSC-UE002, 2020HSC-CIP013, 2021HSC-UE002, 2021HSC-UE003]
  4. Major science and technology project of Anhui Province [202103a05020025]
  5. Key Program of Research and Development of Hefei Science Center, CAS [2021HSC-KPRD002]
  6. Fundamental Research Funds for the Central Universities [WK 2310000103]
  7. Postdoctoral Science Foundation of China [2020M682041, 2020TQ0316]
  8. Young Talent Support Plan of Xi'an Jiaotong University [11304222010715]
  9. Office of Basic Energy Science (BES), Materials Sciences and Engineering (MSE) Division of the U.S. Department of Energy (DOE) [DEAC02-05CH11231]

向作者/读者索取更多资源

We report record stability and high iridium mass activity of Ca2-xIrO4 nanocrystals, with 300 h continuous operation and an activity about 62 times higher than benchmark IrO2. The Ir-rich surface layer, evolved from one-dimensional connected edge-sharing [IrO6] octahedrons, is responsible for the high activity and long-term stability. We also observe key intermediates on iridium-based oxides electrocatalysts and find that they are stable even at low voltages. Density functional theory calculations suggest that the catalytic activity of Ca2IrO4 is enhanced remarkably after surface Ca leaching, allowing for stabilization of IrOO- and Ir=O intermediates on positive charged active sites of the Ir-rich surface layer.
We report Ca2-xIrO4 nanocrystals exhibit record stability of 300 h continuous operation and high iridium mass activity (248 A g(Ir)(-1) at 1.5 VRHE) that is about 62 times that of benchmark IrO2. Lattice-resolution images and surface-sensitive spectroscopies demonstrate the Ir-rich surface layer (evolved from one-dimensional connected edge-sharing [IrO6] octahedrons) with high relative content of Ir5+ sites, which is responsible for the high activity and long-term stability. Combining operando infrared spectroscopy with X-ray absorption spectroscopy, we report the first direct observation of key intermediates absorbing at 946 cm(-1) (Ir6+=O site) and absorbing at 870 cm(-1 )(Ir6+OO- site) on iridium-based oxides electrocatalysts, and further discover the Ir6+=O and Ir6+OO- intermediates are stable even just from 1.3 VRHE. Density functional theory calculations indicate the catalytic activity of Ca2IrO4 is enhanced remarkably after surface Ca leaching, and suggest IrOO- and Ir=O intermediates can be stabilized on positive charged active sites of Ir-rich surface layer.

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