4.8 Article

High crystallinity design of Ir-based catalysts drives catalytic reversibility for water electrolysis and fuel cells

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NATURE COMMUNICATIONS
卷 12, 期 1, 页码 -

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NATURE RESEARCH
DOI: 10.1038/s41467-021-24578-8

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  1. Korea Institute of Science and Technology (KIST) through the National Research Foundation (NRF) - Ministry of Science and ICT, Republic of Korea [2020M1A2A6079141, 2020M3H7A1098229]
  2. German Research Foundation (DFG) [STR 596/11-1]
  3. German Federal Ministry of Education and Research (BMBF) [03HY108D]
  4. National Research Foundation of Korea [2E31240, 2020M1A2A6079141, 4199990414483] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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This study presents a unique Ir-based electrocatalyst with high crystallinity for OER, HER, and HOR. The crystalline nanoparticle forms an atomically-thin IrOx layer during OER operation, which can reversibly transform into metallic Ir at more cathodic potentials, restoring high activity for HER and HOR. The work uncovers the fundamentally reversible catalytic properties of nanoparticle catalysts and provides insights into nanocatalyst design.
The voltage reversal of water electrolyzers and fuel cells induces a large positive potential on the hydrogen electrodes, followed by severe system degradation. Applying a reversible multifunctional electrocatalyst to the hydrogen electrode is a practical solution. Ir exhibits excellent catalytic activity for hydrogen evolution reactions (HER), and hydrogen oxidation reactions (HOR), yet irreversibly converts to amorphous IrOx at potentials > 0.8V/RHE, which is an excellent catalyst for oxygen evolution reactions (OER), yet a poor HER and HOR catalyst. Harnessing the multifunctional catalytic characteristics of Ir, here we design a unique Ir-based electrocatalyst with high crystallinity for OER, HER, and HOR. Under OER operation, the crystalline nanoparticle generates an atomically-thin IrOx layer, which reversibly transforms into a metallic Ir at more cathodic potentials, restoring high activity for HER and HOR. Our analysis reveals that a metallic Ir subsurface under thin IrOx layer can act as a catalytic substrate for the reduction of Ir ions, creating reversibility. Our work not only uncovers fundamental, uniquely reversible catalytic properties of nanoparticle catalysts, but also offers insights into nanocatalyst design. Reversible multifunctionality in electrocatalysts can allow voltage reversal during device operation. Here, authors design a crystalline Ir-based electrocatalyst with a thin reversible metallic-Ir/IrOx layer that shows activity for O-2 evolution, H-2 evolution, and H-2 oxidation.

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