Tunable Fano and Dicke effects in quantum transport of double quantum dots sandwiched between topological insulators
arXiv:2406.11165 · doi:10.1103/PhysRevB.111.155423
Abstract
We study the quantum transport in double quantum dots (DQD) sandwiched between surfaces of topological insulator (TI) BiTe, which possess strong spin-orbit coupling (SOC) and C double group symmetry. Different from the spin-conserved case with two-dimensional electron gas (2DEG) electrodes, the conductance displays a universal scaling relation for different Fermi energy associated with the topological nature/linear dispersion of topological surface states. The interplay between direct inter-dot tunneling and surface state mediated interaction leads to tunable Dicke and Fano effects with changing the inter-dot distance. We propose nano-rulers with different measurement range and resolution based on the Fano -factor. Furthermore, when applying an in-plane Zeeman field, a crossover from a double-peak shape to a quad-peak shape in conductance curve appears. Moreover, the rotational symmetry of the system could also be revealed from the conductance pattern. Our findings contribute to a better understanding of the quantum transport in the presence of electrode's SOC topological states.
7 pages, 6 figures
References in corpus (6)
- Study of 0- phase transition in hybrid superconductor-InSb nanowire quantum dot devices
- Spin-resolved thermal signatures of Majorana-Kondo interplay in double quantum dots
- Josephson current via spin and orbital states of a tunable double quantum dot
- Control of dephasing in spin qubits during coherent transport in silicon
- Spectroscopy of the local density-of-states in nanowires using integrated quantum dots
- Metastability and quantum coherence-assisted sensing in interacting parallel quantum dots