Sagnac interferometry with coherent vortex superposition states in exciton-polariton condensates
arXiv:1506.07762 · doi:10.1103/PhysRevA.93.053603
Abstract
We investigate prospects of using counter-rotating vortex superposition states in non-equilibrium exciton-polariton Bose-Einstein condensates for the purposes of Sagnac interferometry. We first investigate the stability of vortex-antivortex superposition states, and show that they survive at steady-state in a variety of configurations. Counter-rotating vortex superpositions are of potential interest to gyroscope and seismometer applications for detecting rotations. Methods of improving the sensitivity are investigated by targeting high momentum states via metastable condensation, and the application of periodic lattices. The sensitivity of the polariton gyroscope is compared to its optical and atomic counterparts. Due to the large interferometer areas in optical systems and small de Broglie wavelengths for atomic BECs, the sensitivity per detected photon is found to be considerably less for the polariton gyroscope than with competing methods. However, polariton gyroscopes have an advantage over atomic BECs in a high signal-to-noise ratio, and have other practical advantages such as room-temperature operation and robust design. We estimate that the final sensitivities including signal-to-noise aspects are competitive with existing methods.
References in corpus (16)
- Matter-wave interferometry in a double well on an atom chip
- Quantised Vortices in an Exciton-Polariton Fluid
- Exciton-polariton condensates
- Excitations in a non-equilibrium Bose-Einstein condensate of exciton-polaritons
- Bosonic Condensation and Disorder-Induced Localization in a Flat Band
- Spin squeezing, entanglement and quantum metrology with Bose-Einstein condensates
- Rydberg-induced Solitons: Three-dimensional Self-trapping of Matter Waves
- The Sagnac effect: 20 years of development in matter-wave interferometry
- Creation of orbital angular momentum states with chiral polaritonic lenses
- Energy Relaxation in a 1-D Polariton Condensate
- Sculpting the Vortex State of a Spinor BEC
- Coherent atomic soliton molecules for matter-wave switching
- Theory of single-shot phase contrast imaging in spinor Bose-Einstein condensates
- Controllable structuring of exciton-polariton condensates in cylindrical pillar microcavities
- Superfluid rotation sensor with helical laser trap
- Quantum sensitivity limit of a Sagnac hybrid interferometer based on slow-light propagation in ultra-cold gases
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- Bell correlations in a split two-mode-squeezed Bose-Einstein condensate
- Structured light entities, chaos and nonlocal maps
- Excitation of exciton-polariton vortices in pillar microcavities by a Gaussian beam
- Orbital angular momentum dynamics of Bose-Einstein condensates trapped in two stacked rings
- Majorana braiding gates for topological superconductors in a one dimensional geometry
- Emergence and stability of spontaneous vortex lattices in exciton-polariton condensates
- Driven Dipolariton Transistors in Y-shaped Channels
- Persistent current by a static non-Hermitian ratchet
- Phase-locking matter-wave interferometer of vortex states
- Twisted superfluids in moving frame
- Topological Unwinding in an Exciton-Polariton Condensate Array