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Redistribution of electrons between ellipsoids in a magnetic field in the quantum limit range in n-Bi-Sb alloys

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Abstract

The magnetoresistivities ρ22(H) and ρ32(H) and the Hall coefficient R32. 1 for single-crystal samples of the n-Bi0.93Sb0.07 semiconducting alloy have been measured at low temperatures in magnetic fields up to H=14 T at H∥C2. The samples with three electron concentrations n1=1.25 × 1016 cms-3, n2=3.5×1016 cms-3, and n3=1.6×1017 cms-3 have been studied. The strong anisotropy of the electron spectrum of the alloys has made it possible to observe quantum oscillations of the magnetoresistivity ρ22(H) at H∥C2 for electrons of the secondary ellipsoids with the transition to the quantum limit in high magnetic fields. However, in the same magnetic fields, the quantization condition for electrons of the main ellipsoid is not satisfied. An increase in the energy of electrons of the secondary ellipsoids in the magnetic fields of the quantum limit leads to their migration to the main ellipsoid. After the complete migration, the Fermi energy for the alloy samples with the electron concentrations n1, n2, and n3 increases from 7.0 to 11.3 meV, from 11.0 to 17.1 meV, and from 20.2 to 30.6 meV, respectively. After the migration, the magnetoresistivity for electrons of the main ellipsoid increases with an increase in the magnetic field and the specific features in the behavior of the kinetic coefficients are observed in the vicinity of the magnetic field H=10 T. Therefore, the electronic topological transition from the three-valley electron spectrum to the single-valley electron spectrum occurs in the Bi0.93Sb0.07 single crystals for H∥C2 at low temperatures in the range of magnetic fields of the quantum limit.

Original languageEnglish
Pages (from-to)223-229
Number of pages7
JournalPhysics of the Solid State
Volume52
Issue number2
DOIs
StatePublished - Feb 2010
Externally publishedYes

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