| Literature DB >> 35493683 |
K O Obodo1, G Gebreyesus2, C N M Ouma3, J T Obodo4, S O Ezeonu5, D P Rai6, B Bouhafs7.
Abstract
Two dimensional HfS2 is a material with potential applications in the field of photo-catalysis and advanced solid state devices. Density functional theory with the Hubbard U parameter (DFT+U) calculations were carried out to investigate the structural, electronic and optical properties of lanthanide dopant atoms (LN = La, Ce, Pr, Nd, Pm, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb and Lu) in the HfS2 mono-layer. The calculated electronic band gap for a pristine HfS2 mono-layer is 1.30 eV with a non-magnetic ground state. The dopant substitutional energies under both Hf-rich and S-rich conditions were evaluated, with the S-rich condition for the dopant atoms being negative. This implies that the incorporation of these LN dopant atoms in the HfS2 is feasible and experimental realization possible. The introduction of LN dopant atoms in the HfS2 mono-layer resulted in a significant change of the material properties. We found that the presence of LN dopant atoms in the HfS2 mono-layer significantly alters its electronic ground states by introducing defect states as well as changes in the overall density of states profile resulting in a metallic ground state for the doped mono-layers. The doped mono-layers are all magnetic with the exception of La and Lu dopant atoms. We found that LN dopant atoms in the HfS2 mono-layer influence the absorption and reflectivity spectra with the introduction of states in the lower frequency range (<1.30 eV). Furthermore, we showed that the applicability of doped HfS2 mono-layers as photo-catalysts is very different compared with the pristine HfS2 mono-layer. This journal is © The Royal Society of Chemistry.Entities:
Year: 2020 PMID: 35493683 PMCID: PMC9052390 DOI: 10.1039/d0ra02464c
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Fig. 1Schematic of the top (top) and side (bottom) view of (a) pristine and (b) doped HfS2 mono-layer crystal structures. The blue, gold and black circles represent the Hf, S and LN atoms, respectively. The measured bond length is indicated as dLN–S.
The electron configuration (EC) of the lanthanide atoms, bond length between lanthanide atom and sulphur atom (dM–S), the percentage change in the bond length (%ΔdM–S), the calculated total magnetic moment (M), formation energy under the Hf and S-rich conditions i.e. EHf-rich and ES-rich, respectively, the defect level/electronic band gap (BG), the work function (φ) and percentage change in the work function (%Δφ) for the considered LN doped HfS2 mono-layers
| Structures | EC |
| %Δ |
|
|
| BG (eV) |
| %Δ |
|---|---|---|---|---|---|---|---|---|---|
| Hf | [Xe]6s24f145d2 | 2.551 | 0.00 | 0.00 | −4.69 | 1.30 | 6.12 | 0.00 | |
| La | [Xe]6s25d1 | 2.751 | 7.84 | 0.00 | 1.51 | −3.18 | 0.00 | 5.87 | −4.00 |
| Ce | [Xe]6s24f15d1 | 2.688 | 5.37 | 0.92 | 1.89 | −2.80 | 0.00 | 6.28 | 2.70 |
| Pr | [Xe]6s24f3 | 2.721 | 6.66 | 2.01 | 1.80 | −2.89 | 0.00 | 6.32 | 3.26 |
| Nd | [Xe]6s24f4 | 2.726 | 6.86 | 3.01 | 0.47 | −4.22 | 0.00 | 6.40 | 4.62 |
| Pm | [Xe]6s24f5 | 2.761 | 8.23 | 3.95 | 2.42 | −2.27 | 0.00 | 5.91 | −3.46 |
| Sm | [Xe]6s24f6 | 2.724 | 6.78 | 4.87 | 1.32 | −3.37 | 0.00 | 6.02 | −1.60 |
| Eu | [Xe]6s24f7 | 2.742 | 7.49 | 5.84 | 3.55 | −1.13 | 0.00 | 6.27 | 2.45 |
| Gd | [Xe]6s24f8 | 2.724 | 6.78 | 6.98 | 1.63 | −3.06 | 0.00 | 6.04 | −1.23 |
| Tb | [Xe]6s24f9 | 2.615 | 2.51 | 7.00 | −0.74 | −5.43 | 0.00 | 6.37 | 4.15 |
| Dy | [Xe]6s24f10 | 2.580 | 1.14 | 5.02 | −0.67 | −5.36 | 0.00 | 6.25 | 2.14 |
| Ho | [Xe]6s24f11 | 2.629 | 3.06 | 3.99 | −0.60 | −5.29 | 0.00 | 6.36 | 3.97 |
| Er | [Xe]6s24f12 | 2.676 | 4.90 | 3.02 | 1.32 | −3.37 | 0.00 | 6.35 | 3.84 |
| Tm | [Xe]6s24f13 | 2.663 | 4.39 | 2.01 | 1.76 | −2.93 | 0.00 | 6.34 | 3.53 |
| Yb | [Xe]6s24f14 | 2.670 | 4.66 | 1.02 | 2.53 | −2.16 | 0.00 | 6.36 | 3.87 |
| Lu | [Xe]6s24f145d1 | 2.646 | 3.72 | 0.00 | 0.56 | −4.13 | 0.00 | 5.91 | −3.37 |
Fig. 3The calculated spin-polarized projected density of states of the pristine and doped HfS2 mono-layer structures. The green, blue, red and black lines represent the s-, p-, d- and f-orbitals, respectively. The energy levels are adjusted with respect to the Fermi energy.
Fig. 2Calculated total magnetic moment (Mag in μB) and the work function (WF in eV) as a function of the lanthanide dopant atoms in HfS2 mono-layers.
Fig. 4The calculated optical properties as a function of the photon frequency of the pristine and doped mono-layer HfS2 structures. The red and blue lines represent the reflectivity spectra and absorption spectra, respectively.