2006
DOI: 10.1103/physrevb.73.075331
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Spin polarization of edge states and the magnetosubband structure in quantum wires

Abstract: We provide a quantitative description of the structure of edge states in split-gate quantum wires in the integer quantum Hall regime. We develop an effective numerical approach based on the Green's function technique for the self-consistent solution of Schrödinger equation where electron-and spin interactions are included within the density functional theory in the local spin density approximation. The major advantage of this technique is that it can be directly incorporated into magnetotransport calculations,… Show more

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Cited by 46 publications
(133 citation statements)
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References 51 publications
(143 reference statements)
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“…[19][20][21] In this section we therefore outline the electronic and transport properties of armchair and zigzag nanoribbons in the Hartree approximation for spinless electrons [i.e., disregarding the Hubbard and Zeeman interactions, V Z = V U = 0, in Hamiltonian (1)], focusing on the formation of the compressible strips.…”
Section: B Ldos Magnetoband Structure and Formation Of Compressiblmentioning
confidence: 99%
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“…[19][20][21] In this section we therefore outline the electronic and transport properties of armchair and zigzag nanoribbons in the Hartree approximation for spinless electrons [i.e., disregarding the Hubbard and Zeeman interactions, V Z = V U = 0, in Hamiltonian (1)], focusing on the formation of the compressible strips.…”
Section: B Ldos Magnetoband Structure and Formation Of Compressiblmentioning
confidence: 99%
“…Note that various aspects of electron and spin interactions in the high magnetic field have been extensively studied in conventional semiconducting quantum wires defined in a two-dimensional electron gas (2DEG). [13][14][15][16][17][18][19][20][21] One of the motivations for such studies is related to advances in semiconductor spintronics utilizing the spin degree of freedom for adding new functionalities to electronic devices. 22 Some proposed and investigated devices for spintronics and quantum computation applications operate in the edge-state regime, 23,24 which obviously requires a detailed knowledge of the structure of the states in a quantum wire or at the edge of the 2DEG.…”
Section: Introductionmentioning
confidence: 99%
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“…Note that the parabolic confinement represents an excellent approximation to the electrostatic potential from a gated structure. 11,30,33 At the same time, by changing the saddle point of the parabola, V 0 , and the confinement strength, ប , it is convenient to control both the electron density and the smoothness and/or steepness of the potential. The self-consistent solution of Eqs.…”
Section: Resultsmentioning
confidence: 99%
“…͑1͒-͑6͒ for an infinite homogenous wire by the technique described in Ref. 30. The converged solution for the infinite wire is used to find an approximation for the surface Green's function of the left and right leads.…”
Section: ͑4͒mentioning
confidence: 99%