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March 8, 2024Journal of the American Chemical Society128 citations

Highly Crystalline Iridium–Nickel Nanocages with Subnanopores for Acidic Bifunctional Water Splitting Electrolysis

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HDHui DingCSCaijie SuJWJiabao Wu

Key Points

  • Crystalline Ir3Ni nanocages exhibit high bifunctional catalytic activity and durability for acidic water splitting, enabled by their porous structure.
  • Electrocatalysis yields OER mass activity of 3.72 A/mgIr and HER mass activity of 4.47 A/mgIr, exceeding commercial IrO2 and Pt references.
  • Synthesis of subnanoporous shells optimizes active site exposure, which supports durable electrocatalysis during the oxygen evolution reaction.

Abstract

Developing efficient bifunctional materials is highly desirable for overall proton membrane water splitting. However, the design of iridium materials with high overall acidic water splitting activity and durability, as well as an in-depth understanding of the catalytic mechanism, is challenging. Herein, we successfully developed subnanoporous Ir3Ni ultrathin nanocages with high crystallinity as bifunctional materials for acidic water splitting. The subnanoporous shell enables Ir3Ni NCs optimized exposure of active sites. Importantly, the nickel incorporation contributes to the favorable thermodynamics of the electrocatalysis of the OER after surface reconstruction and optimized hydrogen adsorption free energy in HER electrocatalysis, which induce enhanced intrinsic activity of the acidic oxygen evolution reaction (OER) and hydrogen evolution reaction (HER). Together, the Ir3Ni nanocages achieve 3.72 A/mgIr(η=350 mV) and 4.47 A/mgIr(η=40 mV) OER and HER mass activity, which are 18.8 times and 3.3 times higher than that of commercial IrO2 and Pt, respectively. In addition, their highly crystalline identity ensures a robust nanostructure, enabling good catalytic durability during the oxygen evolution reaction after surface oxidation. This work provides a new revenue toward the structural design and insightful understanding of metal alloy catalytic mechanisms for the bifunctional acidic water splitting electrocatalysis.

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Cite This Study

Ding et al. (2024) studied this question.

synapsesocial.com/papers/68e74e1db6db6435876c6cc8https://doi.org/10.1021/jacs.4c01379
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