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Maitreyo Biswas

Publications and source records attributed to Maitreyo Biswas.

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DeFecT-FF: a machine learning force field framework for high throughput defect modeling in CdTe-based solar cells

We developed a framework for predicting the energies and ground state configurations of native point defects, extrinsic dopants and impurities, and defect complexes across zinc blende-phase Cd/Zn-Te/Se/S compounds, important for CdTe-based solar cells. This framework, named DeFecT-FF, is powered by high-throughput density functional theory (DFT) computations and crystal graph-based machine learning force field (MLFF) models trained on the DFT data. The Cd/Zn-Te/Se/S chemical space is chosen because alloying at Cd or Te sites is a promising avenue to tailor the electronic and defect properties of the CdTe absorber layer to potentially improve solar cell performance. The sheer number of defect configurations achievable when considering all possible singular defects and their combinations, symmetry-breaking operations, and defect charge states, as well as the expense of running large supercell calculations, makes this an ideal problem for developing accurate and widely-applicable force field models. Here, we introduce our dataset of structures and energies from HSE06 geometry optimization, including bulk and alloyed supercells with and without defects. Data were gradually expanded using active learning and accurate MLFF models were trained to predict energies and atomic forces across different charge states. Via accelerated prediction and screening, we identified many new low energy defect configurations and obtained high-fidelity defect formation energy diagrams using HSE06 calculations with spin-orbit coupling. The DeFecT-FF framework has been released publicly as an online tool on the nanoHUB platform, allowing users to upload any crystallographic information file, generate defects of interest, and compute defect formation energies as a function of Fermi level and chemical potential conditions, thus bypassing expensive DFT calculations.

cond-mat.mtrl-sci

Strain induced variations in transport and optical properties of SrVO$_3$: a DFT+U study

First-principles calculations based on density functional theory + Hubbard U (DFT+U) approach have been carried out to study the strain induced variations in the optical and transport properties of the correlated perovskite SrVO$_3$. By virtue of its conductivity, high carrier mobility and optical transparency, SrVO$_3$ can be used as a potential replacement of indium tin oxide (ITO) as a transparent conductor. As strain tuning is an effective way to tune the electron-electron correlations in correlated oxides, the epitaxial strain induced variations in V-3d bandwidth, band center shift and band splitting at high symmetry points ($Γ$, R) in SrVO$_3$ are investigated. The alterations in resistivity, carrier concentration, Hall coefficient and plasma frequency with applied strain are also elucidated. Our calculations revealed that under tensile strain, the lifting of the threefold degeneracy of 3d-t$_{2g}$ orbital and d-band narrowing reinforces a relatively less conducting state thus limiting the $ω_P$ to lower frequencies. On the contrary, in case of compressive strain the d-band widening predominates leading to an increase in carrier concentration and decrease in resistivity enhancing the metallic state. As a result, $ω_P$ is increased to higher frequencies which decreases the optical transparency window. Hence, our results and findings clearly demonstrate the interdependence between the optical and transport properties, and provides a detailed mechanism to tune the optoelectronic properties of SrVO$_3$ for its applications as a transparent conducting oxide.

cond-mat.mtrl-sci