Paper
30 August 2006 Force field parameters for large-scale computational modeling of sensitized TiO2 surfaces
Sabas G. Abuabara, Jose A. Gascon, Cheryl Suet-Yee Leung, Luis G. C. Rego, Victor S. Batista
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Abstract
Force field parameters for large scale computational modeling of sensitized TiO2-anatase surfaces are developed from ab initio molecular dynamics simulations and geometry optimization based on Density Functional Theory (DFT). The resulting force field, composed of Coulomb, van der Waals and harmonic interactions, reproduces the ab initio structures and the phonon spectra density profiles of TiO2-anatase nanostructures functionalized with catechol, a prototype of an aromatic linker commonly used to sensitize TiO2 nanoparticles with Ru(II)-polypyridyl dyes. In addition, simulations of interfacial electron injection and electron-hole relaxation dynamics demonstrate the capabilities of the resulting molecular mechanics force-field, as applied in conjunction with mixed quantum-classical methods, for modeling quantum processes that are critical for the overall efficiency of sensitized-TiO2 solar cells.
© (2006) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Sabas G. Abuabara, Jose A. Gascon, Cheryl Suet-Yee Leung, Luis G. C. Rego, and Victor S. Batista "Force field parameters for large-scale computational modeling of sensitized TiO2 surfaces", Proc. SPIE 6325, Physical Chemistry of Interfaces and Nanomaterials V, 63250R (30 August 2006); https://doi.org/10.1117/12.677408
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KEYWORDS
Molecules

Phonons

Ions

Mechanics

Nanostructures

Semiconductors

Chemical species

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