First-principles investigation of graphene/MoS2 bilayer heterostructures using Tkatchenko-Scheffler van der Waals method
arXiv:1802.03919 · doi:10.1103/PhysRevB.98.155309
Abstract
Graphene/MoS van der Waals (vdW) heterostructures have promising technological applications due to their unique properties and functionalities. Many experimental and theoretical research groups across the globe have made outstanding contributions to benchmark the properties of graphene/MoS heterostructures. Even though some research groups have already made an attempt to model the graphene/MoS heterostructures using {\it first-principles} calculations, there exists several discrepancies in the results from different theoretical research groups and the experimental findings. In the present work, we revisit this problem by first principles approach and address the existing discrepancies about the interlayer spacing between graphene and MoS monolayers in graphene/MoS heterostructures, and the location of Dirac points near Fermi-level. We find that the Tkatchenko--Scheffler method efficiently evaluates the long-range vdW interactions and accurately predicts interlayer spacing between graphene and MoS sheets. We further investigate the electronic, mechanical and vibrational properties of the optimized graphene/MoS heterostructures created using 55/44 and 44/33 supercell geometries having different magnitudes of lattice mismatch. The effect of the varying interlayer spacing on the electronic properties of heterostructures is discussed. Our phonon calculations reveal that the interlayer shear and breathing phonon modes, which are very sensitive to the weak vdW interactions, play vital role in describing the thermal properties of the studied systems. The thermodynamic and elastic properties of heterostructures are further discussed. A comparison between our results and the results reported from other research groups is presented.
13 pages, 7 figures
References in corpus (30)
- Electric Field Effect in Atomically Thin Carbon Films
- The electronic properties of graphene
- 2D materials and van der Waals heterostructures
- The PseudoDojo: Training and grading a 85 element optimized norm-conserving pseudopotential table
- Biased bilayer graphene: semiconductor with a gap tunable by electric field effect
- Graphane: a two-dimensional hydrocarbon
- Graphene Spintronics
- Asymmetry gap in the electronic band structure of bilayer graphene
- Nonvolatile Memory Cells Based on MoS2/Graphene Heterostructures
- Elastic Properties of Chemical-Vapor-Deposited Monolayer MoS2, WS2, and Their Bilayer Heterostructures
- Graphene on transition-metal dichalcogenides: a platform for proximity spin-orbit physics and optospintronics
- Trivial and inverted Dirac bands, and emergence of quantum spin Hall states in graphene on transition-metal dichalcogenides
- Phonon dispersions and vibrational properties of monolayer, bilayer, and trilayer graphene
- Observation of interlayer phonon modes in van der Waals heterostructures
- Graphene Versus MoS2: a Short Review
- Rotationally Commensurate Growth of MoS2 on Epitaxial Graphene
- Giant tunable Rashba spin splitting in two-dimensional BiSb monolayer and BiSb/AlN heterostructures
- 2D MoS2-Graphene-based multilayer van der Waals heterostructures: Enhanced charge transfer and optical absorption, and electric-field tunable Dirac point and band gap
- Proximity effects in bilayer graphene on monolayer WSe: Field-effect spin-valley locking, spin-orbit valve, and spin transistor
- Band offset and negative compressibility in graphene-MoS2 heterostructures
- First-Principles Study of Hybrid Graphene and MoS Nanocomposites
- A Review on Flexural Mode of Graphene: Lattice Dynamics, Thermal Conduction, Thermal Expansion, Elasticity, and Nanomechanical Resonance
- Layer breathing modes in few-layer graphene
- Comparison of performance of van der Waals-corrected exchange-correlation functionals for interlayer interaction in graphene and hexagonal boron nitride
- MoS2: a Choice Substrate for Accessing and Tuning the Electronic Properties of Graphene
- Prediction of a controllable Weyl semi-metallic phase in inversion-asymmetric BiSb
- Interatomic force constants including the DFT-D dispersion contribution
- Mass inversion in graphene by proximity to dichalcogenide monolayer
- Origin of layer dependence in band structures of two-dimensional materials
- Bilayer graphene under pressure: Electron-hole Symmetry Breaking, Valley Hall Effect, and Landau Levels
Cited by in corpus (18)
- PyProcar: A Python library for electronic structure pre/post-processing
- MechElastic: A Python Library for Analysis of Mechanical and Elastic Properties of Bulk and 2D Materials
- Charge-to-spin conversion in twisted graphene/WSe heterostructures
- Coupled spin-valley, Rashba effect and hidden persistent spin polarization in WSiN family
- Low energy phases of bilayer Bi predicted by structure search in two dimensions
- Manipulation of Spin Transport in Graphene/Transition Metal Dichalcogenide Heterobilayers upon Twisting
- Topological phases and twisting of graphene on a dichalcogenide monolayer
- Phonons in MoSe2/WSe2 van der Waals heterobilayer
- Ferroelectric valley valves with graphene/MoTe van der Waals heterostructures
- Misfit strain effect on the thermal expansion coefficient of graphene/MoS van der Waals heterostructures
- Proximity-induced topological transition and strain-induced charge transfer in graphene/MoS2 bilayer heterostructures
- Rashba spin splitting based on trilayer graphene systems
- Enhanced thermopower in two-dimensional ruthenium dichalcogenides (X = S, Se): a first-principles study
- Dirac-Rashba fermions and quantum valley Hall insulators in graphene-based 2D heterostructures
- Two-Dimensional graphene-HfS van der Waals heterostructure as electrode material for Alkali-ion batteries
- Elastic Constants and Bending Rigidities from Long-Wavelength Perturbation Expansions
- 2D electrons floating on a suspended atomically thin dielectric
- Proximity spin-orbit coupling in graphene on alloyed transition metal dichalcogenides