About

Log in?

DTU users get better search results including licensed content and discounts on order fees.

Anyone can log in and get personalized features such as favorites, tags and feeds.

Log in as DTU user Log in as non-DTU user No thanks

DTU Findit

Journal article

OH formation and H-2 adsorption at the liquid water-Pt(111) interface

From

Department of Energy Conversion and Storage, Technical University of Denmark1

Atomic Scale Materials Modelling, Department of Energy Conversion and Storage, Technical University of Denmark2

The liquid water-Pt(111) interface is studied with constant temperature ab initio molecular dynamics to explore the importance of liquid water dynamics of catalytic reactions such as the oxygen reduction reaction in PEM fuel cells. The structure and energetics of hydroxyls formed at the liquid water-Pt(111) interface are found to be significantly different from those of the hydroxyl formed on a bare Pt(111) surface and the hydroxyl formed on a Pt(111) surface with a static water layer.

We identify 1/12 ML *OH, 5/12 ML *OH and 2/3 ML *OH as particularly stable hydroxyl coverages in highly dynamic liquid water environments, which - contrary to static water-hydroxyl models - contain adjacent uncovered Pt sites. Atomic surface oxygen is found to be unstable in the presence of liquid water, in contrast to static atomic level simulations.

These results give an improved understanding of hydroxide and surface oxide formation from Pt(111) cyclic voltammetry and allow us to draw detailed connections between the electrostatic potential and the interface structure. The study of hydrogen adsorption at the liquid water-Pt(111) interface finds competitive adsorption between the adsorbed hydrogen atoms and water molecules.

This does not adhere with experimental observations, and this indicates that the Pt(111) surface has to be negatively charged for a correct description of the liquid water-Pt(111) interface at potentials where hydrogen adsorption occurs.

Language: English
Publisher: Royal Society of Chemistry
Year: 2018
Pages: 6912-6921
ISSN: 20416539 and 20416520
Types: Journal article
DOI: 10.1039/c8sc02495b
ORCIDs: Vegge, Tejs , Hansen, Heine Anton and 0000-0001-6943-0752

DTU users get better search results including licensed content and discounts on order fees.

Log in as DTU user

Access

Analysis