Optically driven spin precession in polariton condensates
- URL: http://arxiv.org/abs/2305.03782v1
- Date: Fri, 5 May 2023 18:30:24 GMT
- Title: Optically driven spin precession in polariton condensates
- Authors: Ivan Gnusov, Stepan Baryshev, Helgi Sigur{\dh}sson, Kirill Sitnik,
Julian T\"opfer, Sergey Alyatkin and Pavlos G. Lagoudakis
- Abstract summary: We introduce an all-optically driven spin precession in microcavity polariton condensates.
We realise several GHz driven spin precession with a macroscopic spin coherence time that is limited only by the extraneous to the condensate.
Our observations are supported by mean field modelling and evidence a driven-dissipative quantum fluidic analogue of the nuclear magnetic resonance effect.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: External driving of spinor degrees of freedom by magnetic or optical fields
in quantum systems underpin many applications ranging from nuclear magnetic
resonance to coherent state control in quantum computing. Although spinor
polariton condensates are offering a flexible platform for spinoptronic
applications, strong inter-particle interactions limit their spin coherence.
Here, we introduce an all-optically driven spin precession in microcavity
polariton condensates that eliminates depolarisation, through a radio frequency
modulation of a spatially rotating, asymmetric exciton reservoir that both
confines, and actively replenishes the polariton condensate. We realise several
GHz driven spin precession with a macroscopic spin coherence time that is
limited only by the extraneous to the condensate, frequency drift of the
composite pumping sources. Our observations are supported by mean field
modelling and evidence a driven-dissipative quantum fluidic analogue of the
nuclear magnetic resonance effect.
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