Role of magnetic doping in topological HgTe and application of the Gram-Schmidt method for computing impurity states in quantum wells
arXiv:2409.13891 · doi:10.1088/1361-6641/ad97d6
Abstract
The quantum spin Hall effect in non-magnetic and Mn-doped HgTe quantum well is strongly affected by Kondo scattering of edge electrons by holes localized on acceptors. A generalized eigenvalue method is usually employed for determining impurity binding energies from the multiband Kohn-Luttinger Hamiltonians in bulk samples and semiconductor quantum structures. Such an approach provides accurate values of the level positions but its applicability for determining the impurity localization radius can be questioned. As an alternative method we propose here the Gram-Schmidt ortogonalization procedure allowing to employ the standard eigenvalue algorithms and, thus, to determine both impurity level energies and the set of normalized eigenvectors. We apply this approach to singly-ionized acceptor states in HgTe quantum wells and obtain impurity level energies and localization radiuses even for states degenerate with the continuum of band states. Such information allows us to assess the energy of bound magnetic polarons in quantum wells doped with magnetic ions. We determine the polaron energies and discuss consequences of the resonant polaron formation on band transport in the bulk samples and quantum wells in the regimes of quantum Hall effects.
7 pages, 3 figures
References in corpus (13)
- Quantum Spin Hall Insulator State in HgTe Quantum Wells
- Kondo effect in the helical edge liquid of the quantum spin Hall state
- Conductance of a helical edge liquid coupled to a magnetic impurity
- Kondo decoherence: finding the right spin model for iron impurities in gold and silver
- Fractional quantum Hall effect in CdTe
- Emergent quantum Hall effects below mT in a two-dimensional topological insulator
- Momentum-resolved spin splitting in Mn-doped trivial CdTe and topological HgTe semiconductors
- Fractional Quantum Hall Effect in a Diluted Magnetic Semiconductor
- Effects of charge dopants in quantum spin Hall materials
- Spin dynamics of a confined electron interacting with magnetic or nuclear spins: A semiclassical approach
- Quantitative theory of backscattering in topological HgTe and (Hg,Mn)Te quantum wells: acceptor states, Kondo effect, precessional dephasing, and bound magnetic polaron
- CdTe and HgTe doped with V, Cr, and Mn -- prospects for the quantum anomalous Hall effect
- Tight-binding theory of spin-spin interactions, Curie temperatures, and quantum Hall effects in topological (Hg,Cr)Te in comparison to non-topological (Zn,Cr)Te, and (Ga,Mn)N