Asymmetry of non-local dissipation: From drift-diffusion to hydrodynamics
arXiv:1906.03832 · doi:10.1103/PhysRevB.100.205430
Abstract
We study dissipation in inhomogeneous two-dimensional electron systems. We predict a relatively strong current-induced spatial asymmetry in the heating of the electron and phonon systems -- even if the inhomogeneity responsible for the electrical resistance is symmetric with respect to the current direction. We also show that the heat distributions in the hydrodynamic and impurity-dominated limits are essentially different. In particular, within a wide, experimentally relevant interval of driving fields, the dissipation profile in the hydrodynamic limit turns out to be asymmetric, and the characteristic spatial scale of the temperature distribution can be controlled by the driving field. By contrast, in the same range of parameters, impurity-dominated heating is almost symmetric, with the size of the dissipation region being independent of the field. This allows one to distinguish experimentally the hydrodynamic and impurity-dominated limits. Our results are consistent with recent experimental findings on transport and dissipation in narrow constrictions and quantum point contacts.
References in corpus (4)
Cited by in corpus (8)
- Low-Temperature Heat Transport under Phonon Confinement in Nanostructures
- Dissipation without resistance: Imaging impurities at quantum Hall edges
- Heating of inhomogeneous electron flow in the hydrodynamic regime
- Asymmetric power dissipation in electronic transport through a quantum point contact
- Hydrodynamics of the electronic Fermi liquid: a pedagogical overview
- Viscous flow through a finite-width slit: Boundary conditions and dissipation
- Going beyond Landauer scattering theory to describe spatially-resolved non-local heating and cooling in quantum thermoelectrics
- Voltage characteristics of hydrodynamic Dirac electron nozzles with supersonic flow