Resonant two-laser spin-state spectroscopy of a negatively charged
quantum dot-microcavity system with a cold permanent magnet
- URL: http://arxiv.org/abs/2303.02763v1
- Date: Sun, 5 Mar 2023 20:10:49 GMT
- Title: Resonant two-laser spin-state spectroscopy of a negatively charged
quantum dot-microcavity system with a cold permanent magnet
- Authors: P. Steindl, T. van der Ent, H. van der Meer, J.A. Frey, J. Norman,
J.E. Bowers, D. Bouwmeester, W. L\"offler
- Abstract summary: We show a compact cryogenically compatible SmCo magnet design that delivers 475 mT in-plane Voigt geometry magnetic field at 5 K.
This quantum dot is embedded in a birefringent high-finesse optical micro-cavity which enables efficient collection of single photons.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: A high-efficiency spin-photon interface is an essential piece of quantum
hardware necessary for various quantum technologies. Self-assembled InGaAs
quantum dots have excellent optical properties, if embedded into an optical
micro-cavity they can show near-deterministic spin-photon entanglement and spin
readout, but an external magnetic field is required to address the individual
spin states, which usually is done using a superconducting magnet. Here, we
show a compact cryogenically compatible SmCo magnet design that delivers 475 mT
in-plane Voigt geometry magnetic field at 5 K, which is suitable to lift the
energy degeneracy of the electron spin states and trion transitions of a single
InGaAs quantum dot. This quantum dot is embedded in a birefringent high-finesse
optical micro-cavity which enables efficient collection of single photons
emitted by the quantum dot. We demonstrate spin-state manipulation by
addressing the trion transitions with a single and two laser fields. The
experimental data agrees well to our model which covers single- and two-laser
cross-polarized resonance fluorescence, Purcell enhancement in a birefringent
cavity, and variation of the laser powers.
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