Path-integral simulation of graphene monolayers under tensile stress
arXiv:1712.04361 · doi:10.1039/C7CP06821B
Abstract
Finite-temperature properties of graphene monolayers under tensile stress have been studied by path-integral molecular dynamics (PIMD) simulations. This method allows one to consider the quantization of vibrational modes in these crystalline membranes and to analyze the influence of anharmonic effects in the membrane properties. Quantum nuclear effects turn out to be appreciable in structural and thermodynamic properties of graphene at low temperature, and they can even be noticeable at room temperature. Such quantum effects become more relevant as the applied stress is increased, mainly for properties related to out-of-plane atomic vibrations. The relevance of quantum dynamics in the out-of-plane motion depends on the system size, and is enhanced by tensile stress. For applied tensile stresses, we analyze the contribution of the elastic energy to the internal energy of graphene. Results of PIMD simulations are compared with calculations based on a harmonic approximation for the vibrational modes of the graphene lattice. This approximation describes rather well the structural properties of graphene, provided that the frequencies of ZA (flexural) acoustic modes in the transverse direction include a pressure-dependent correction.
13 pages, 10 figures
References in corpus (15)
- The electronic properties of graphene
- The structure of suspended graphene sheets
- Finite temperature lattice properties of graphene beyond the quasiharmonic approximation
- Nonlinear elasticity of monolayer graphene
- Theory of 2D crystals: graphene and beyond
- Hidden area and mechanical nonlinearities in freestanding graphene
- Properties of discrete breathers in graphane from ab initio simulations
- Quasi-harmonic approximation of thermodynamic properties of ice Ih, II, and III
- Quantum effects in graphene monolayers: Path-integral simulations
- Anharmonic effects in the optical and acoustic bending modes of graphene
- Path-integral molecular dynamics simulation of 3C-SiC
- Density functional theory analysis of flexural modes, elastic constants, and corrugations in strained graphene
- Hydrogen and muonium in diamond: A path-integral molecular dynamics simulation
- Elastic properties and mechanical tension of graphene
- Graphene as a hexagonal 2-lattice: evaluation of the in-plane material constants for the linear theory. A multiscale approach
Cited by in corpus (5)
- Quantum and classical ripples in graphene
- Elastic properties and mechanical stability of bilayer graphene: Molecular dynamics simulations
- Nuclear quantum effects in graphene bilayers
- Critical behavior in graphene: spinodal instability at room temperature
- Thermal control of graphene morphology: a signature of its intrinsic surface tension