Model of DC Tunneling Conductivity via Hydrogen‐Like Impurities in Heavily Doped Compensated Semiconductors

Author:

Poklonski Nikolai A.1ORCID,Anikeev Ilya I.1ORCID,Vyrko Sergey A.1ORCID,Zabrodskii Andrei G.2ORCID

Affiliation:

1. Physics Department Belarusian State University 220030 Minsk Belarus

2. Ioffe Physicotechnical Institute RAS 194021 St. Petersburg Russia

Abstract

Herein, a theoretical model is proposed for the weakly temperature‐dependent electrical conductivity of compensated crystalline semiconductors with hydrogen‐like impurities near the insulator–metal concentration phase transition (Mott transition). The model uses a simple non‐stoichiometric cubic “impurity lattice” formed by the doping and compensating impurities in crystal matrix. A shift of the c‐band bottom (v‐band top) into the bandgap due to overlap of the excited states of neighboring impurities is considered. The distribution of electron (and hole) density of states in the band of ground (unexcited) states of impurities is assumed to be Gaussian. Tunneling transitions of electrons between nearest donors in the charge states () and (), and tunneling transitions of holes between acceptors in the charge states () and () are considered. It is shown that, at low temperatures, transitions of electrons (holes) near the Fermi level in the impurity band lead to electrical conductivity that weakly depends on temperature (in the form of a characteristic plateau). The results of calculating electrical resistivity in the zero‐temperature limit for the plateau region agree with the known experimental data for moderately compensated n‐ and p‐type Ge, Dia, Si, ZnSe, GaAs, InSb, and InP crystals.

Funder

Ministry of Education of the Republic of Belarus

Belarusian Republican Foundation for Fundamental Research

Publisher

Wiley

Subject

Condensed Matter Physics,Electronic, Optical and Magnetic Materials

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