DFT2kp: effective kp models from ab-initio data
arXiv:2306.08554 · doi:10.21468/SciPostPhysCodeb.25
Abstract
The method, combined with group theory, is an efficient approach to obtain the low energy effective Hamiltonians of crystalline materials. Although the Hamiltonian coefficients are written as matrix elements of the generalized momentum operator (including spin-orbit coupling corrections), their numerical values must be determined from outside sources, such as experiments or ab initio methods. Here, we develop a code to explicitly calculate the Kane (linear in crystal momentum) and Luttinger (quadratic in crystal momentum) parameters of effective Hamiltonians directly from ab initio wavefunctions provided by Quantum ESPRESSO. Additionally, the code analyzes the symmetry transformations of the wavefunctions to optimize the final Hamiltonian. This is an optional step in the code, where it numerically finds the unitary transformation that rotates the basis towards an optimal symmetry-adapted representation informed by the user. Throughout the paper, we present the methodology in detail and illustrate the capabilities of the code applying it to a selection of relevant materials. Particularly, we show a "hands-on" example of how to run the code for graphene (with and without spin-orbit coupling). The code is open source and available at https://gitlab.com/dft2kp/dft2kp.
28 pages, 8 figures
References in corpus (17)
- Electric Field Effect in Atomically Thin Carbon Films
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Two Dimensional Atomic Crystals
- Advanced capabilities for materials modelling with Quantum ESPRESSO
- Quantum Spin Hall Effect and Topological Phase Transition in HgTe Quantum Wells
- Discovery (theoretical prediction and experimental observation) of a large-gap topological-insulator class with spin-polarized single-Dirac-cone on the surface
- SIESTA: recent developments and applications
- Double crystallographic groups and their representations on the Bilbao Crystallographic Server
- Electrons and holes in phosphorene
- Relativistic k.p Hamiltonians for centrosymmetric topological insulators from ab initio wave functions
- Electronic transport in disordered MoS nanoribbons
- VASP2KP: kp models and Lande g-factors from ab initio calculations
- Interband polarized absorption in InP polytypic superlattices
- Stability and accuracy control of parameters
- Invariant expansion of the 30-band k.p model and its parameters for III-V compounds
- Explicit constructions of unitary transformations between equivalent irreducible representations
- Multiband theory for hexagonal germanium
Cited by in corpus (6)
- Pymablock: an algorithm and a package for quasi-degenerate perturbation theory
- Existence of Mexican-hat dispersion and symmetry group of a layer
- Theory for electron and hole fine structure and Landé g-factors in lead chalcogenide nanowires
- Reentrant topological phase in half-Heusler compounds
- Physical Pictures for Quasisymmetry in Crystals
- Self-Consistent Model for Gate Control of Narrow-, Broken-, and Inverted-Gap (Topological) Heterostructures