Published May 2, 2024 | Version v1
Journal article

Multiband k·p theory for hexagonal germanium

  • 1. Department of Physics, University of Konstanz, D-78457 Konstanz, Germany
  • 2. Department of Biological Physics, Eötvös Loránd University, H-1117 Budapest, Hungary
  • 3. Department of Physics of Complex Systems, Eötvös Loránd University, H-1117 Budapest, Hungary

Description

The direct bandgap found in hexagonal germanium and some of its alloys with silicon allows for an optically active material within the group-IV semiconductor family with various potential technological applications. However, there remain some unanswered questions regarding several aspects of the band structure, including the strength of the electric dipole transitions at the center of the Brillouin zone. Using the k·p method near the Γ point, including 10 bands, and taking spin-orbit coupling into account, we obtain a self-consistent model that produces the correct band curvatures, with previously unknown inverse effective mass parameters, to describe 2H-Ge via fitting to ab initio data and to calculate effective masses for electrons and holes. To understand the weak dipole coupling between the lowest conduction band and the top valance band, we start from a spinless 12-band model and show that when adding spin-orbit coupling, the lowest conduction band hybridizes with a higher-lying conduction band, which cannot be explained by the spinful 10-band model. With the help of Löwdin's partitioning, we derive the effective low-energy Hamiltonian for the conduction bands for the possible spin dynamics and nanostructure studies and in a similar manner, we give the best-fit parameters for the valance-band-only model that can be used in the transport studies. Using the self-consistent 10-band model, we include the effects of a magnetic field and predict the electron and hole g factor of the conduction and valance bands. Finally, we give an ellipticity analysis of the found effective mass tensor, to ensure the uniqueness of the solutions for its application to heterostructures.

Additional details

Identifiers

DOI
10.1103/PhysRevB.109.205202;
arXiv
arXiv:2310.17366;
Crossref Funder ID
10.13039/501100007601; 10.13039/501100003549; 10.13039/501100012550; 10.13039/501100011019;

Publishing Information

Journal Title
Physical Review B
Journal Volume
109
Journal Issue
20
Journal Page Range
14 pgs.
ISSN
1550-235X

Optional Information

Copyright
©2024 American Physical Society
Contract/Grant/Project number
K134437; 2022-2.1.1-NL-2022-00004
Notes
Contact Email: yetkin.pulcu@uni-konstanz.de; Contact Email: guido.burkard@uni-konstanz.de; Record automatically processed
Funding organization
Horizon 2020; Hungarian Scientific Research Fund; Nemzeti Kutatási, Fejlesztési és Innovaciós Alap; Nemzeti Kutatási Fejlesztési és Innovációs Hivatal