All-optical band structure reconstruction and onset of Landau quantization of Dirac fermions
arXiv:2509.02362 · doi:10.1063/5.0279070
Abstract
The nature of relativistic electrons in solids depends on the precise shape of the underlying band structure. Prominently, symmetry-related mechanisms, such as the breaking of time reversal symmetry in topological insulators, can lead to the emergence of band gaps on small energy scales. It is, thus, important to quantify potential gaps of the Dirac cone with meV precision. Yet established band structure measurements are often challenged by their strict surface sensitivity or limited energy resolution. In this work, we use broadband, time-resolved THz magneto-spectroscopy to access the band structure of Dirac electrons in a buried HgTe quantum well by contact-free, all-optical measurements. Optical doping allows us to control the Fermi level without applying any electrical gate voltages. The background-free measurement of the cyclotron resonance of the Dirac system over 2.5 optical octaves, a broad range of magnetic field strengths, and different Fermi energies allows us to reconstruct the band structure near the Dirac point with sub-meV precision, and to observe a crossover of Landau quantization from a quasi-classical to the relativistic regime.
Josef Riepl and Marc Aichner contributed equally
References in corpus (11)
- Quantum Spin Hall Effect and Topological Phase Transition in HgTe Quantum Wells
- Quantum Spin Hall Insulator State in HgTe Quantum Wells
- Single valley Dirac fermions in zero-gap HgTe quantum wells
- Angle-resolved photoemission spectroscopy and its application to topological materials
- The Quantum Twisting Microscope
- Buildup and dephasing of Floquet-Bloch bands on subcycle time scales
- Magnetic properties of HgTe quantum wells
- Direct observation of Floquet-Bloch states in monolayer graphene
- Quantum Oscillations of Photocurrents in HgTe Quantum Wells with Dirac and Parabolic Dispersions
- Terahertz cyclotron emission from two-dimensional Dirac fermions
- Band Structure of Two-dimensional Dirac Semimetal from Cyclotron Resonance