Two-dimensional metal-insulator-transition as a potential fluctuation driven semiclassical transport phenomenon
arXiv:1306.2621 · doi:10.1103/PhysRevB.88.155310
Abstract
We theoretically consider the carrier density tuned (apparent) two-dimensional (2D) metal-insulator-transition (MIT) in semiconductor heterostructure-based 2D carrier systems as arising from a classical percolation phenomenon in the inhomogeneous density landscape created by the long-range potential fluctuations induced by random quenched charged impurities in the environment. The long-range Coulomb disorder inherent in semiconductors produces strong potential fluctuations in the 2D system where a fraction of the carriers gets trapped or classically localized, leading to a mixed 2-component semiclassical transport behavior at intermediate densities where a fraction of the carriers is mobile and another fraction immobile. At high carrier density, all the carriers are essentially mobile whereas at low carrier density all the carriers are essentially trapped since there is no possible percolating transport path through the lake-and-mountain inhomogeneous potential landscape. The low-density situation with no percolation would mimic an insulator whereas the high-density situation with allowed percolating paths through the lake-and-mountain energy landscape would mimic a metal with the system manifesting an apparent MIT in between. We calculate the transport properties as a function of carrier density, impurity density, impurity location, and temperature using a 2-component (trapped and mobile carriers) effective medium theory. Our theoretically calculated transport properties are in good qualitative agreement with the experimentally observed 2D MIT phenomenology in 2D electron and hole systems. We find a high (low) density metallic (insulating) temperature-dependence of the 2D resistivity, and an intermediate-density crossover behavior which could be identified with the experimentally observed 2D MIT.
16 pages, 20 figures
References in corpus (14)
- Metal-insulator transition in two-dimensional electron systems
- Ground-state of graphene in the presence of random charged impurities
- Density-Functional Theory of Graphene Sheets
- The Observation of Percolation-Induced 2D Metal-Insulator Transition in a Si MOSFET
- Density inhomogeneity driven percolation metal-insulator transition and dimensional crossover in graphene nanoribbons
- Effective medium theory for disordered two-dimensional graphene
- Transport and percolation in a low-density high-mobility two-dimensional hole system
- Thermodynamic density of states of two-dimensional GaAs systems near the apparent metal-insulator transition
- Nonlinear screening and percolative transition in a two-dimensional electron liquid
- Two-dimensional metal-insulator transition and in-plane magnetoresistance in a high mobility strained Si quantum well
- Insulating behavior in metallic bilayer graphene: Interplay between density inhomogeneity and temperature
- Two-dimensional electronic transport on the surface of 3D topological insulators
- Effect of charged impurity correlation on transport in monolayer and bilayer graphene
- Linear temperature dependence of conductivity in Si two-dimensional electrons near the apparent metal-to-insulator transition
Cited by in corpus (25)
- High-Mobility Holes in Dual-Gated WSe Field-Effect Transistors
- Estimating disorder and its adverse effects in semiconductor Majorana nanowires
- Strongly correlated two-dimensional plasma explored from entropy measurements
- The 2D metal-insulator transition as a strong localization induced crossover phenomenon
- Transport in two-dimensional modulation doped semiconductor structures
- Screening and transport in 2D semiconductor systems at low temperatures
- An apparent metal insulator transition in high mobility 2D InAs heterostructures
- Disorder induced 2D metal-insulator transition in moiré transition metal dichalcogenide multilayers
- Transport in two-dimensional disordered semimetals
- Progress in superconductor-semiconductor topological Josephson junctions
- Novel Energy Scale in the Interacting 2D Electron System Evidenced from Transport and Thermodynamic Measurements
- Electronic transport, metal-insulator transition, and Wigner crystallization in transition metal dichalcogenide monolayers
- Density-tuned effective metal-insulator transitions in 2D semiconductor layers: Anderson localization or Wigner crystallization
- Spin polarization and exchange-correlation effects in transport properties of two-dimensional electron systems in silicon
- Metallic state in a strongly interacting spinless two-valley electron system in two dimensions
- Understanding disorder in Silicon quantum computing platforms: Scattering mechanisms in Si/SiGe quantum wells
- Anderson localization in doped semiconductors
- Integer Quantum Hall Effect: Disorder, temperature, floating, and plateau width
- Strongly metallic electron and hole 2D transport in an ambipolar Si-vacuum field effect transistor
- Anderson localization on the Falicov-Kimball model with Coulomb disorder
- Phase Separation in Two-Dimensional Electron Systems: Experimental View
- Bound state-continuum resonance transition in a shallow quantum well
- Impact of Short-Range Scattering on the Metallic Transport of Strongly Correlated 2D Holes in GaAs Quantum Wells
- Magnetic instability and spin-glass order beyond the Anderson-Mott transition in interacting power-law random banded matrix fermions
- Impact of static disorder on quasiparticle spectra: Debye-Waller, mean free path and potential fluctuation effects