Tunable g-Factors of Hybridized Orbitals in a Quantum Dot Molecule
Michelle Lienhart, Krzysztof Gawarecki, Pavel Daskalov, Christopher Thalacker, Nadeem Akhlaq, Irina Ivanova, Johannes Schall, Sven Rodt, Stephan Reitzenstein, Arne Ludwig, Dirk Reuter, Kai Müller, Jonathan J. Finley
Abstract
The ability to control the g-factors of orbital spin states in optically active quantum dot molecules (QDMs) is a prerequisite for the high-fidelity generation of multi-photonic cluster states with higher-dimensional entanglement structure. Protocols that rely on two coupled spins require knowledge of the g-factor and its dependence on external control parameters. Mismatches in the g-factor between tunnel-coupled dots introduce unwanted dephasing of coupled spin-states, making precise characterization and voltage control essential. Here, we measure the gate voltage dependence of the electron and hole g-factors of negatively charged trions X- in a single InGaAs QDM using polarization-resolved magneto-photoluminescence spectroscopy. The electron g-factor exhibits a pronounced step-like change at the tunneling resonance, shifting from ge = -0.336 0.008 to ge = -0.389 0.003, providing a direct spectroscopic fingerprint of molecular orbital formation and a shift of the wavefunction localization from the lower to the upper dot. In contrast, the hole g-factor remains nearly constant at gh ≈ 0.094 0.007, exhibiting a weak modulation near the anticrossing voltages attributed to Coulomb-mediated deformation of the wavefunction by the tunneling electron. Our results are quantitatively reproduced by an eight-band k·p model, establishing electric-field control of the trion g-factors as a practical tool for independently tuning the Zeeman splitting of individual dots and opening new pathways towards the deterministic generation of two-dimensional photonic cluster states.
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