First Principles Quantum Transport with Electron-vibration Interactions: A Maximally Localized Wannier Function Approach
arXiv:1204.6369 · doi:10.1103/PhysRevB.87.245407
Abstract
We present an ab initio inelastic quantum transport approach based on maximally localized Wannier functions. Electronic-structure properties are calculated with density-functional theory in a planewave basis, and electron-vibration coupling strengths and vibrational properties are determined with density-functional perturbation theory. Vibration-induced inelastic transport properties are calculated with non-equilibrium Green's function techniques, which are based on localized orbitals. For this purpose we construct maximally localized Wannier functions. Our formalism is applied to investigate inelastic transport in a benzene molecular junction connected to mono-atomic carbon chains. In this benchmark system the electron-vibration self-energy is calculated either in the self-consistent Born approximation or by lowest-order perturbation theory. It is observed that upward and downward conductance steps occur, which can be understood using multi-eigenchannel scattering theory and symmetry conditions. In a second example where the mono-atomic carbon chain electrode is replaced by a (3; 3) carbon nanotube, we focus on the non-equilibrium vibration populations driven by the conducting electrons using a semi-classical rate equation.
14 pages, 16 figures
References in corpus (19)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Maximally localized Wannier functions: Theory and applications
- Dependence of Single Molecule Junction Conductance on Molecular Conformation
- Franck-Condon blockade and giant Fano factors in transport through single molecules
- Inelastic transport theory from first-principles: methodology and applications for nanoscale devices
- Vibrational sidebands and dissipative tunneling in molecular transistors
- Theory of the Franck-Condon blockade regime
- Vibrational and electronic heating in nanoscale junctions
- Heat conduction in molecular transport junctions
- Inelastic scattering and local heating in atomic gold wires
- Modeling inelastic phonon scattering in atomic- and molecular-wire junctions
- Many Body Effects on the Transport Properties of Single-Molecule Devices
- Cycloaddition Functionalizations to Preserve or Control the Conductance of Carbon Nanotubes
- Vibrational Sidebands and Kondo-effect in Molecular Transistors
- Inelastic tunneling effects on noise properties of molecular junctions
- Inelastic effects in molecular junctions in the Coulomb and Kondo regimes: Nonequilibrium equation-of-motion approach
- Nonequilibrium isolated molecule limit
- Nonequilibrium resonant spectroscopy of molecular vibrons
- Charge-memory polaron effect in molecular junctions
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- Introducing Open boundary conditions in modeling nonperiodic materials and interfaces: the impact of the periodic assumption