Structural and dynamic properties of the poly(ethylene oxide)/anatase interface (i.e., PEO/TiO2) are explored via metadynamics simulations and density functional tight binding. 1-ns trajectories are reconstructed upon two different structure-related collective variables: interfacial Tisurf-OPEO distances and polymer chain torsion angles. The conformational freedom of PEO is significantly influenced by multiple favorable interactions with unsaturated Ti sites on the anatase surface. From these trajectories, several equilibrium structures extracted from the free-energy surface are analyzed using electronic structure calculations within density functional theory: the titania work function results in being largely influenced by the dynamically resolved structuring of PEO on the anatase surface. Besides the intrinsic valuable insights into the technologically relevant PEO/TiO2 interface, our findings provide the first innovative example of an affordable yet reliable computational protocol to describe a heterogeneous interface and predict the effects of molecular dynamics on relevant physicochemical properties.
Elucidating Structural and Electronic Features of PEO/(101)-TiO2 Anatase Interfaces through First-Principles Metadynamics Simulations / Massaro, Arianna; Fasulo, Francesca; Muñoz-García, Ana B.; Pavone, Michele. - In: JOURNAL OF PHYSICAL CHEMISTRY. C.. - ISSN 1932-7455. - 128:47(2024), pp. 20497-20504. [10.1021/acs.jpcc.4c07016]
Elucidating Structural and Electronic Features of PEO/(101)-TiO2 Anatase Interfaces through First-Principles Metadynamics Simulations
Arianna Massaro;Francesca Fasulo;
2024
Abstract
Structural and dynamic properties of the poly(ethylene oxide)/anatase interface (i.e., PEO/TiO2) are explored via metadynamics simulations and density functional tight binding. 1-ns trajectories are reconstructed upon two different structure-related collective variables: interfacial Tisurf-OPEO distances and polymer chain torsion angles. The conformational freedom of PEO is significantly influenced by multiple favorable interactions with unsaturated Ti sites on the anatase surface. From these trajectories, several equilibrium structures extracted from the free-energy surface are analyzed using electronic structure calculations within density functional theory: the titania work function results in being largely influenced by the dynamically resolved structuring of PEO on the anatase surface. Besides the intrinsic valuable insights into the technologically relevant PEO/TiO2 interface, our findings provide the first innovative example of an affordable yet reliable computational protocol to describe a heterogeneous interface and predict the effects of molecular dynamics on relevant physicochemical properties.I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.


