Long-range spin transport in asymmetric quadruple quantum dots configurations
arXiv:2505.23901 · doi:10.1038/s42005-025-02319-3
Abstract
We theoretically investigate long-range coherent charge transport in linear quadruple quantum dot (QQD) arrays under reduced symmetry configurations. Employing a master equation approach, we identify precise resonant conditions that enable minimal occupation of intermediate dots, thereby facilitating long-range transfer between distant sites. Our results highlight the critical role of parameter asymmetry and coherent tunneling mechanisms in achieving efficient quantum state transfer.
13 pages, 12 figures
References in corpus (9)
- Coherent electronic transfer in quantum dot systems using adiabatic passage
- An electrostatically defined serial triple quantum dot charged with few electrons
- All-electronic coherent population trapping in quantum dots
- Two path transport measurements on a triple quantum dot
- The 3D transport diagram of a triple quantum dot
- Anisotropic Pauli Spin Blockade of Holes in a GaAs Double Quantum Dot
- A few-electron quadruple quantum dot in a closed loop
- Full control of quadruple quantum dot circuit charge states in the single electron regime
- Spin-polarized currents in double and triple quantum dots driven by ac magnetic fields