Nonadiabatic Dynamics of Polaron Hopping and Coupling with Water on Reduced TiO 2 .
Zhong-Fei XuChuan-Jia TongRu-Tong SiGilberto TeobaldiLi-Min LiuPublished in: The journal of physical chemistry letters (2022)
By interplay between first-principles molecular dynamics and nonadiabatic molecular dynamics simulations based on the decoherence-induced surface-hopping approach, we investigate and quantify the mechanisms through which different electron polaron hopping regimes in the reduced anatase TiO 2 (101) surface influence recombination of photogenerated charge carriers, also in the presence of adsorbed water (H 2 O) molecules. The simulations reveal that fast hopping regimes promote ultrafast recombination of photogenerated charge-carriers. Conversely, charge recombination is delayed in the presence of slower polaron hopping and even more so if the polaron is pinned at one Ti-site, as typical following adsorption of H 2 O on the anatase(101) surface. These trends are related to the observed enhancement of the space and energy overlap between conduction band minimum and polaron band gap states, and the ensuing nonadiabatic couplings (NAC) strengths, during a polaronic hop. We expect these insights on the beneficial role of polaron diffusion pinning for the extended lifetime of photoexcitations in TiO 2 to sustain ongoing developments of photocatalytic strategies based on this substrate.
Keyphrases
- molecular dynamics
- molecular dynamics simulations
- density functional theory
- visible light
- dna repair
- dna damage
- solar cells
- quantum dots
- transcription factor
- genome wide
- single cell
- diabetic rats
- high glucose
- gene expression
- drug induced
- gold nanoparticles
- room temperature
- dna methylation
- reduced graphene oxide
- ionic liquid