Auger and spin dynamics in a self-assembled quantum dot
Hendrik Mannel, Jens Kerski, Pia Lochner, Marcel Z\"ollner, Andreas D., Wieck, Arne Ludwig, Axel Lorke, Martin Geller

TL;DR
This study investigates electron and trion dynamics in a single quantum dot under magnetic fields, revealing how Auger recombination and electron tunneling influence spin coherence, crucial for quantum information applications.
Contribution
It provides new measurements of Auger recombination rates and uncovers a novel spin decoherence mechanism involving Auger processes in quantum dots.
Findings
Auger recombination rate decreases with magnetic field strength.
Auger events combined with electron tunneling can flip the electron spin.
Measured spin-flip and Raman rates in a self-assembled quantum dot.
Abstract
The Zeeman-split spin states of a single quantum dot can be used together with its optical trion transitions to form a spin-photon interface between a stationary (the spin) and a flying (the photon) quantum bit. Besides long coherence times of the spin state itself, the limiting decoherence mechanisms of the trion states are of central importance. We investigate here in time-resolved resonance fluorescence the electron and trion dynamics in a single self-assembled quantum dot in an applied magnetic field of up to T. The quantum dot is only weakly coupled to an electron reservoir with tunneling rates of about ms. Using this sample structure, we can measure, in addition to the spin-flip rate of the electron and the spin-flip Raman rate of the trion transition, the Auger recombination process, that scatters an Auger electron into the conduction band. The Auger effect…
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Taxonomy
TopicsQuantum and electron transport phenomena · Semiconductor Quantum Structures and Devices · Quantum optics and atomic interactions
