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Kati Asikainen

Publications and source records attributed to Kati Asikainen.

5 recordsLinked to original sources

Data-Efficient Machine learning for Predicting Dopant Formation Energies in TiO$_2$ Monolayer

Machine learning models are increasingly applied in materials science, yet their predictive power is often constrained by data scarcity. Here, we show that accurate predictions can be achieved, even with a limited number of training examples, provided the dataset is compact and and grounded in physically relevant quantities. By combining density functional theory calculations with a machine-learning framework, we construct accurate descriptor-based models to predict the formation energies of doped lepidocrocite TiO$_2$ monolayers. The predictive accuracy of machine-learning models was first evaluated for single-dopant Pt configurations, demonstrating that the selected structural and chemical descriptors reliably capture the key factors governing dopant stability. Chemical transferability is then examined by extending the dataset to include Ag-doped configurations. Predictive accuracy improved systematically as additional Ag-doped data points were included in the training, while the performance of Pt remains robust. These results highlight the potential of small and well-curated datasets combined with physically informed descriptors to enable not only accurate but also chemically transferable machine-learning-driven screening in doped TiO$_2$ monolayer.

cond-mat.mtrl-sci

Suppression of stripe-ordered structural phases in monolayer IrTe$_2$ by a gold substrate

Metal-assisted exfoliation of two-dimensional (2D) materials has emerged as an efficient route to isolating large-area monolayer crystals, yet the influence of the supporting metal substrate on their intrinsic properties remains poorly understood. Here, we demonstrate successful gold-assisted exfoliation of monolayer IrTe$_2$ up to the millimeter scale. Angle-resolved photoemission spectroscopy (ARPES), combined with first-principles calculations, reveals that the low-energy electronic structure closely resembles that of a freestanding monolayer 1T-IrTe$_2$. We find that quasi-covalent hybridization together with substrate-induced strain leads to only modest modifications of the electronic bands. Although strain contributes to phase stability, it is essentially hybridization that drives the stabilization of the 1T-phase of the monolayer IrTe$_2$ by suppressing stripe-ordered phase transitions. These results establish gold-assisted exfoliation as a robust route to prepare a large-area monolayer IrTe$_2$ and highlight the role of metal-substrate interaction in engineering 2D materials with tailored structural phases.

cond-mat.mtrl-sci

Tuning the Electronic Properties of Two-Dimensional Lepidocrocite Titanium Dioxide Based Heterojunctions

Two-dimensional (2D) heterostructures reveal novel physicochemical phenomena at different length scales, that are highly desirable for technological applications. We present a comprehensive density functional theory study of van der Waals (vdW) heterostructures constructed by stacking 2D TiO2 and 2D MoSSe monolayers to form TiO2-MoSSe heterojunction. The heterostructure formation is found to be exothermic, indicating stability. We find that by varying the atomic species at the interfaces the electronic structure can be considerably altered, due to the differences in charge transfer, arising from the inherent electronegativity of the atoms. We demonstrate that the heterostructures possess a type II or type III band alignment, depending on the atomic termination of MoSSe at the interface. The observed charge transfer occurs from MoSSe to TiO2. Our results suggest that Janus interface enables the tuning of electronic properties, providing understanding of the possible applications of the TiO2-MoSSe heterostructure.

cond-mat.mtrl-sci

Tailoring the electronic properties of TiO$_2$ monolayers for solar driven catalysis through transition metal doping

Substitutional doping with transition metals is carried out in the Lepidocrocite phase - the stable monolayer geometry of TiO$_2$, using density functional theory (DFT) methods. The doping is carried out at the differently coordinated O atom cites, producing Janus monolayer geometries. Our results indicate that key fundamental properties for photocatalysis can be tuned via doping. Monolayers doped with Ag, Au, Pd and Pt are thermodynamically stable, amongst all considered doping possibilities, as evident from phonon band structure calculations. Electronic structure of the Janus monolayers alters significantly, compared to pristine TiO$_2$, owing to the emergence of mid-gap states. Reduced band gap arises from upward shift of the valence band, suggesting enhanced visible-light response. Dopant atoms also introduce excess electrons in TiO$_2$ monolayers, which are found to localize at a single Ti site. This induces ferromagnetism in the doped monolayers. Furthermore, charge separation between TiO$_2$ and noble metal dopants is observed which is a key parameter in influencing the selectivity and activity of photocatalytic materials. Compared to the pristine TiO$_2$ monolayer, the Janus structure can promote water adsorption, and the Janus monolayers exhibit significantly improved activity in the hydrogen evolution reaction. These findings suggest that engineering a novel Janus TiO$_2$-based monolayer with a noble metal layer on the other surface can offer a potential approach to improve photocatalytic performance over pristine TiO$_2$.

cond-mat.mtrl-sci

Understanding and Optimizing the Sensitization of Anatase Titanium Dioxide Surface with Hematite Clusters

The presence of small hematite (Fe2O3) clusters at low coverage on titanium dioxide (TiO2) surface has been observed to enhance photocatalytic activity, while excess loading of hematite is detrimental. We conduct a comprehensive density functional theory study of Fe2O3 clusters adsorbed on the anatase TiO2 (101) surface to investigate the effect of Fe2O3 on TiO2. Our study shows that TiO2 exhibits improved photocatalytic properties with hematite clusters at low coverage, as evidenced by a systematic study conducted by increasing the number of cluster adsorbates. The adsorption of the clusters generates impurity states in the band gap improving light absorption and consequently affecting the charge transfer dynamics. Furthermore, the presence of hematite clusters enhances the activity of TiO2 in the hydrogen evolution reaction. The Fe valence mixing present in some clusters leads to a significant increase in H2 evolution rate compared with the fixed +3 valence of Fe in hematite. We also investigate the effect of oxygen defects and find extensive modifications in the electronic properties and local magnetism of the TiO2 - Fe2O3 system, demonstrating the wide-ranging effect of oxygen defects in the combined system.

cond-mat.mtrl-sci