Nanoscale Structure and Dynamics of Water on Pt and Cu Surfaces from MD Simulations.

Langmuir

Department of Materials Science and Engineering , The Pennsylvania State University , 1 Pollock Road , State College, Pennsylvania 16801 , United States.

Published: October 2018

The interaction of liquid water with Pt(111) is investigated with classical molecular dynamics (MD) simulations, where the forces are determined using the third-generation charge optimized many-body (COMB3) interatomic potential. In cases of sub-monolayer water coverage, the parameterized empirical potential predicts experimentally observed and energetically favorable √37 and √39 reconstructed water structures with "575757" di-interstitial defects. At both sub-monolayer and multilayer water coverages, the structure of the first wetting layer of liquid water on Pt(111) exhibits a characteristic distribution where the molecules form two distinct buckled layers as a result of the interplay between water-metal adsorption and water-water hydrogen bonds. The dynamic spreading rate of water nanodroplets on large Pt surfaces (>200 nm) characterized by molecular kinetic spreading theory is an order of magnitude slower than the molecular kinetic rate of the same droplet on close-packed Cu surfaces due to variation in molecular distributions at the water-metal interface. These nanoscale MD simulation predictions using the COMB3 interatomic potential demonstrate the capability of capturing both many-body interactions between HO and Pt or Cu and hydrogen bonding in liquid water.

Download full-text PDF

Source
http://dx.doi.org/10.1021/acs.langmuir.8b02315DOI Listing

Publication Analysis

Top Keywords

liquid water
12
water
8
water pt111
8
comb3 interatomic
8
interatomic potential
8
molecular kinetic
8
nanoscale structure
4
structure dynamics
4
dynamics water
4
water surfaces
4

Similar Publications

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!