Tuning the exchange interaction by electric field in laterally coupled quantum dots
arXiv:0812.1897 · doi:10.1088/0953-8984/21/23/235601
Abstract
The effect of external electric field on the exchange interaction has been studied by an exact diagonalization method for two electrons in laterally coupled quantum dots (QD's). We have performed a systematic study of several nanodevices that contain two gate-defined QD's with different shapes and sizes located between source and drain contacts. The confinement potential is modelled by two potential wells with a variable range and softness. In all the considered nanodevices, the overall dependence of exchange energy on electric field is similar, i.e., for low fields increases with increasing , for intermediate fields reaches a maximum, and rapidly falls down to zero if exceeds a certain critical value. However, the dependence shows characteristic properties that depend on the nanodevice geometry. We have found that the low- and intermediate-field behaviour can be accurately parametrized by linear function $J(F) = \αF + \β$, where is independent of the nanodevice geometry and softness of the confinement potential. We have shown that the linear dependence appears only if the tunnel coupling between the QD's is weak, i.e., the interdot separation is sufficiently large. The dependence becomes non-linear for the strong interdot tunnel coupling. If the QD located near the contact, to which the higher voltage is applied, possesses the elliptic shape and is larger than the other QD, the dependence shows a plateau in a broad electric-field regime. The linearity and rapid jumps of as well as the existence of the plateau can be applied to tune the exchange interaction by changing the external electric field.
References in corpus (11)
- Excited-state spectroscopy on a nearly-closed quantum dot via charge detection
- Failure of standard approximations of the exchange coupling in nanostructures
- Few-electron artificial molecules formed by laterally coupled quantum rings
- Effect of confinement potential shape on exchange interaction in coupled quantum dots
- Exchange interaction and stability diagram of coupled quantum dots in magnetic fields
- Role of interactions in the far-infrared spectrum of a lateral quantum dot molecule
- Quantum dot defined in two-dimensional electron gas at n-AlGaAs/GaAs heterojunction: simulation of electrostatic potential and charging properties
- Controlled exchange interaction for quantum logic operations with spin qubits in coupled quantum dots
- Size effects in the exchange coupling between two electrons in quantum wire quantum dots
- Engineering Exchange Coupling in Double Elliptic Quantum Dots
- The von Neumann-Wigner theorem in quantum dot molecules