AI Article Synopsis

  • - Recent research has shown that exciton polaritons in semiconductor microcavities can condense into a coherent state similar to a Bose-Einstein condensate, allowing scientists to create and manipulate quantum vortices in a superfluid environment.
  • - A nonresonant Laguerre-Gaussian optical beam was used to generate exciton-polariton condensates, successfully transferring the light's orbital angular momentum to the exciton-polariton fluid and producing quantized vortices despite considerable energy loss during pumping.
  • - These vortices are robust and primarily influenced by the light's orbital angular momentum, which allows for effective manipulation of their properties like chirality and topological charge, suggesting potential applications in energy transfer and

Article Abstract

Recently, exciton polaritons in a semiconductor microcavity were found to condense into a coherent ground state much like a Bose-Einstein condensate and a superfluid. They have become a unique testbed for generating and manipulating quantum vortices in a driven-dissipative superfluid. Here, we generate an exciton-polariton condensate with a nonresonant Laguerre-Gaussian optical beam and verify the direct transfer of light's orbital angular momentum to an exciton-polariton quantum fluid. Quantized vortices are found in spite of the large energy relaxation involved in nonresonant pumping. We identified phase singularity, density distribution, and energy eigenstates for the vortex states. Our observations confirm that nonresonant optical Laguerre-Gaussian beam can be used to manipulate chirality, topological charge, and stability of the nonequilibrium quantum fluid. These vortices are quite robust, only sensitive to the orbital angular momentum of light and not other parameters such as energy, intensity, size, or shape of the pump beam. Therefore, optical information can be transferred between the photon and exciton-polariton with ease and the technique is potentially useful to form the controllable network of multiple topological charges even in the presence of spectral randomness in a solid state system.

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Source
http://dx.doi.org/10.1103/PhysRevLett.122.045302DOI Listing

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