Tuning the exchange interaction by electric field in laterally coupled quantum dots
Artur Kwasniowski, Janusz Adamowski

TL;DR
This study investigates how external electric fields influence the exchange interaction in laterally coupled quantum dots, revealing predictable behaviors and potential for precise tuning in quantum device applications.
Contribution
The paper provides a systematic analysis of the electric field dependence of exchange interaction in various quantum dot configurations, highlighting conditions for linear and non-linear behaviors and potential tuning mechanisms.
Findings
Exchange energy J increases with electric field at low fields
J reaches a maximum at intermediate fields and then drops to zero
Linear J(F) dependence occurs with weak tunnel coupling
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…
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