AI Article Synopsis

  • Iridium oxide (IrO) is an effective catalyst for oxygen evolution, and reducing its metal content via small nanoparticles is crucial for large-scale use.
  • Understanding the interface between water and IrO nanoparticles is essential for optimizing their role as electrocatalysts in aqueous solutions, which was explored using DFT calculations and AIMD simulations.
  • Key factors affecting HO adsorption energy include metal coordination and hydrogen bonding; nanoparticles show varied adsorption behavior based on their structural sites, with tip and corner sites favoring molecular forms due to lower interaction strengths.

Article Abstract

Iridium oxide is a highly efficient catalyst for the oxygen evolution reaction, whose large-scale application requires decreasing the metal content. This is achieved using small nanoparticles. The knowledge of the water-IrO nanoparticle interface is of high importance to understand the IrO behavior as electrocatalyst in aqueous solutions. In this contribution, DFT (PBE-D2) calculations and AIMD simulations on IrO nanoparticle models of different sizes ((IrO) and (IrO)) are performed. Results show that two key factors determine the HO adsorption energy and the preferred adsorption structure (molecular or dissociated water): metal coordination and hydrogen bonding with oxygen bridge atoms of the IrO surface. Regarding metal coordination, and since the tetragonal distortion existing in IrO is retained on the nanoparticle models, the adsorption at iridium axial vacant sites implies stronger Ir-HO interactions, which favors water dissociation. In contrast, Ir-HO interaction at equatorial vacant sites is weaker and thus the relative stability of molecular and dissociated forms becomes similar. Hydrogen bonding increases adsorption energy and favors water dissociation. Thus, tip and corner sites of the nanoparticle, with no oxygen bridge atoms nearby, exhibit the smallest adsorption energies and a preference for the molecular form. Overall, the presence of rather isolated tip and corner sites in the nanoparticle leads to lower adsorption energies and a smaller degree of water dissociation when compared with extended surfaces.

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Source
http://dx.doi.org/10.1039/d1nr03592dDOI Listing

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