ELECTRON TRANSPORT AND ELECTRON DENSITY INSIDE ONE-DIMENSIONAL DISORDERED CONDUCTORS: An Analysis of the Electronic-Levels Contribution
arXiv:2302.10304 · doi:10.1080/17455030.2023.2186073
Abstract
We consider the problem of electron transport along a one-dimensional disordered multiple-scattering conductor, and study the electron density for all the electronic levels. A model is proposed for the reduced density matrix of the system placed between two reservoirs at different chemical potentials, and the statistical-mechanical expectation value of the electron density is evaluated. An ensemble average is computed over disordered configurations. We compare its predictions with computer simulations. We find that the contribution of low-lying levels is very different from that of the high-lying ones studied in the past. Going down in energy, the wave function penetrates ever less inside the sample. For high-lying levels, this is interpreted in terms of localization from disorder. For low-lying levels, this interpretation gradually gives way to an understanding in terms of the increasing reflection produced by each scatterer, which is seen by the electron as a higher and higher -- and hence impenetrable -- potential barrier. Indeed, the local-density-of-states, LDOS, is gradually depleted in the interior of the system, since the wave function is ever smaller inside. The problem studied here is also of interest in electromagnetic, thermal, and acoustic transport in disordered systems.
40 pages, 15 figures. Accepted in the journal Waves in Random and Complex Media
References in corpus (10)
- Direct observation of Anderson localization of matter-waves in a controlled disorder
- Heat Transport in low-dimensional systems
- Dynamics of Anderson localization in open 3D media
- Transmission eigenchannels and the densities of states of random media
- Depth-Targeted Energy Deposition Deep Inside Scattering Media
- Universal statistics of waves in a random time-varying medium
- Coherent enhancement of optical remission in diffusive media
- Probing Long-Range Intensity Correlations inside Disordered Photonic Nanostructures
- Contribution of evanescent waves to the effective medium of disordered waveguides
- Sum rules for energy deposition eigenchannels in scattering systems