Squeezed atom laser for Bose-Einstein condensate with minimal length
arXiv:1805.12363 · doi:10.1007/s10773-019-04190-9
Abstract
We study a protocol for constructing a squeezed atom laser for a model originating from the generalized uncertainty principle. We show that the squeezing effects arising from such systems do not require any squeezed light as an input, but the squeezing appears automatically because of the structure of the model it owns. The output atom laser beam becomes squeezed due to the nonlinear interaction between the Bose-Einstein condensate and the deformed radiation field created due to the noncommutative structure. We analyze several standard squeezing techniques based on the analytical expressions followed by a numerical analysis for further insights.
11 pages, 2 figures
References in corpus (21)
- Making Sense of Non-Hermitian Hamiltonians
- Universality of Quantum Gravity Corrections
- Strong relative intensity squeezing by 4-wave mixing in Rb vapor
- The Generalized Uncertainty Principle in (A)dS Space and the Modification of Hawking Temperature from the Minimal Length
- The effects of minimal length and maximal momentum on the transition rate of ultra cold neutrons in gravitational field
- Position-dependent noncommutativity in quantum mechanics
- Effects of quadratic coupling and squeezed vacuum injection in an optomechanical cavity assisted with a Bose-Einstein condensate
- q-deformed noncommutative cat states and their nonclassical properties
- Generating squeezing in an atom laser through self-interaction
- Squeezed coherent states for noncommutative spaces with minimal length uncertainty relations
- Entangled squeezed states in noncommutative spaces with minimal length uncertainty relations
- PT-symmetric noncommutative spaces with minimal volume uncertainty relations
- A new bound on polymer quantization via an opto-mechanical setup
- Controllable generation of photons and phonons in a coupled BEC-optomechanical-cavity via the parametric dynamical Casimir effect
- Probing noncommutative theories with quantum optical experiments
- Intrinsic cross-Kerr nonlinearity in an optical cavity containing an interacting Bose-Einstein condensate
- Squeezed single-atom laser in a photonic crystal
- Modification of Schrödinger-Newton equation due to braneworld models with minimal length
- Controlling steady-state bipartite entanglements and quadrature squeezing in a membrane-in-the-middle optomechanical system with two Bose-Einstein condensates
- Dispersive interaction of a Bose-Einstein condensate with the movable mirror of an optomechanical cavity in the presence of the laser phase noise
- A squeezed review on coherent states and nonclassicality for non-Hermitian systems with minimal length
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