Improving the description of interlayer bonding in TiS2 by Density Functional Theory
Ricci Matteo, Ambrosetti Alberto, Silvestrelli Pier Luigi

TL;DR
This study examines the limitations of current DFT methods in accurately modeling interlayer interactions in TiS2, and proposes a modified sulfur pseudopotential to improve agreement with experimental data and extend to similar layered materials.
Contribution
The paper introduces a novel sulfur pseudopotential that enhances DFT accuracy in describing interlayer bonding in TiS2 and related layered materials.
Findings
Modified pseudopotential yields better density deformation match with experiments.
Improved DFT estimates of interlayer binding energies.
Enhanced description applicable to other S-containing layered systems.
Abstract
We investigate energetic and electronic properties of TiS2 , an archetypal van der Waals (vdW) material, from first principles, in the framework of the Density Functional Theory (DFT). In this system a recent experimental study showed a puzzling discrepancy between the distribution of the electron density in the interlayer region obtained by X-ray diffraction data and that computed by DFT, even adopting DFT functionals that should properly include vdW effects. Such a discrepancy could indicate a partial failure of state-of-the-art DFT approaches in describing the weak interlayer interactions of TiS2 and, possibly, of similar systems too. In order to shed light on this issue, we have carried out simulations based on different DFT functionals, basically confirming the mentioned discrepancy with the experimental findings. Subsequently, we have tried to reproduce the experimental interlayer…
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Taxonomy
Topics2D Materials and Applications · MXene and MAX Phase Materials · Boron and Carbon Nanomaterials Research
