Related Experiment Video
Updated: May 14, 2026

In situ FTIR Spectroscopy as a Tool for Investigation of Gas/Solid Interaction: Water-Enhanced CO2 Adsorption in UiO-66 Metal-Organic Framework
Published on: February 1, 2020
Correlating surface adsorbate configuration and electrochemical performance of IrO2 during seawater-relevant
Tianyou Mou1, Daniela A Bushiri2, Daniel V Esposito2
1Chemistry Division, Brookhaven National Laboratory, New York, NY 11973.
Abstract:
Seawater electrolysis alleviates freshwater demand to produce clean hydrogen while eliminating the need for water purification steps. The anodic process, seawater oxidation, typically requires high overpotentials and yields low selectivity to oxygen via the oxygen evolution reaction (OER), primarily due to the competing chlorine evolution reaction (CER) and hypochlorite evolution reaction (HCER) in pH-neutral conditions. Here, combining in situ surface-enhanced Raman characterization, grand canonical density functional theory-based calculations, and kinetic Monte Carlo simulations, we report the evolution of surface adsorbate configurations driven by applied potential and pH during seawater-relevant OER over IrO2, a highly OER-active and chloride-corrosion-resistant catalyst. As a result, the chemical properties of active sites, and thereby the kinetics of OER and CER/HCER, are effectively tuned. However, it is revealed that there is no optimal combination of potential and pH to achieve both high activity and high selectivity for seawater-relevant OER. To address this limitation, we establish a correlation between activity/selectivity and surface adsorbate configurations, enabling the optimization of highly active and OER-selective IrO2-based catalysts in seawater-relevant oxidation by modulating the local adsorbate environment of active sites.
Related Concept Videos
Processes at Electrodes
Electrodeposition
Electrodeposition can...
Colloidal precipitates
Formation of Complex Ions
Interfacial Electrochemical Methods: Overview
Precipitation of Ions
The equation that describes the equilibrium between solid calcium carbonate and its solvated ions is:

