Eliminating the confined dark-exciton qubit precession using an externally applied magnetic field

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Abstract

We investigate experimentally and theoretically the behavior of the confined dark exciton in an InAs/GaAs semiconductor quantum dot, under the application of an external magnetic field in a Voigt configuration. We show that by varying the magnitude and direction of the external field one can accurately control the dark-exciton fine-structure splitting. In addition, we show that the dark-exciton spin state is approximately polarized along the cubic crystallographic directions [100] or equivalents. By comparing our experimental results with a model for the exchange and Zeeman interactions, we find the conditions for nullifying the fine-structure splitting between the two eigenstates of the dark exciton, thereby stopping its qubit precession.

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Su, Z. E., Cogan, D., Schwartz, I., Beck, A., & Gershoni, D. (2025). Eliminating the confined dark-exciton qubit precession using an externally applied magnetic field. Physical Review B, 111(16). https://doi.org/10.1103/PhysRevB.111.L161302

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