A generalized framework for straintronics in 2D quantum materials using group theory
arXiv:2410.19095 · doi:10.1103/PhysRevB.111.085112
Abstract
In the era of 2D and quasi-2D quantum materials one needs to model strain at the level of the Hamiltonian as opposed to a semi-classical approach. Corrections to the electronic Hamiltonian due to strain arise from two sources: deformations of the lattice and changes in the hoppings. Here, we provide a general theory that takes into account the symmetry of the lattice and that of the bonds, and allows us to write down the strain corrections from all sources in any 2D lattice in terms of the band structure parameters like the velocity and the inverse mass tensor. We then use Group theory to identify when strain can be described as a scalar- and/or a vector-potential. We discuss the nature of the potentials that arise from in- and out-of-plane hoppings, allowing us to model multi-layer systems. We also show that, in general, one encounters multiple vector-potentials in different sectors of the Hilbert space, but one can derive a simpler effective low energy strained Hamiltonian via Hilbert space projections. We discuss several toy models of 2D systems and present strained bilayer graphene as a practical system that incorporates all of the above features. We identify a strain dependent energy scale in bilayer graphene above which we would no longer need to account for multiple vector-potentials. The generality of this formulation allows for a wider range of materials to be investigated for quantum transport straintronics.
29 pages, 5 figures
References in corpus (42)
- The electronic properties of graphene
- Uniaxial Strain in Graphene by Raman Spectroscopy: G peak splitting, Gruneisen Parameters and Sample Orientation
- Energy gaps, topological insulator state and zero-field quantum Hall effect in graphene by strain engineering
- The electronic properties of bilayer graphene
- All-graphene integrated circuits via strain engineering
- Wave-packet dynamics in slowly perturbed crystals: Gradient corrections and Berry-phase effects
- Gauge fields in graphene
- Effects of Strain on Electronic Properties of Graphene
- Electronic and optical properties of strained graphene and other strained 2D materials: a review
- Isospin magnetism and spin-triplet superconductivity in Bernal bilayer graphene
- Determination of the gate-tunable bandgap and tight-binding parameters in bilayer graphene using infrared spectroscopy
- Graphene as an electronic membrane
- Symmetry-based approach to electron-phonon interactions in graphene
- Strain fields in twisted bilayer graphene
- Generation of pure bulk valley current in graphene
- Effective lattice Hamiltonian for monolayer MoS2 : Tailoring electronic structure with perpendicular electric and magnetic fields
- Spin-Orbit Enhanced Superconductivity in Bernal Bilayer Graphene
- Nanomechanical Resonators: Toward Atomic Scale
- Gauge fields from strain in graphene
- Split superconducting and time-reversal symmetry-breaking transitions, and magnetic order in SrRuO under uniaxial stress
- Strain-induced quantum phase transitions in magic angle graphene
- Strained bilayer graphene: Band structure topology and Landau level spectrum
- Understanding electron behavior in strained graphene as a reciprocal space distortion
- Pseudo magnetic field in strained graphene: revisited
- Generalizing the Fermi velocity of strained graphene from uniform to nonuniform strain
- Electron pumping in graphene mechanical resonators
- Strain Modulated Superlattices in Graphene
- Electronic states in a graphene flake strained by a Gaussian bump
- Strain-induced time-reversal odd superconductivity in graphene
- Coexistence of spin-1/2 and spin-1 Dirac-Weyl fermions in the edge-centered honeycomb lattice
- Topological electric current from time-dependent elastic deformations in graphene
- Gauge fields in graphene with nonuniform elastic deformations: A quantum field theory approach
- Topological exact flat bands in two dimensional materials under periodic strain
- Fictitious gauge fields in bilayer graphene
- Graphene Quantum Strain Transistors
- Low-energy theory for strained graphene: an approach up to second-order in the strain tensor
- Strained Bilayer Graphene, Emergent Energy Scales, and Moire Gravity
- Analytic solution to pseudo-Landau levels in strongly bent graphene nanoribbons
- Isolated flat bands in 2D lattices based on a novel path-exchange symmetry
- Mechanical control of quantum transport in graphene
- Time-Dependent Strain in Graphene
- Quantum Transport Straintronics and Mechanical Aharonov-Bohm Effect in Quasi-metallic SWCNTs