Ideal-Modified Bosonic Gas Trapped in an Arbitrary Three Dimensional Power-Law Potential
arXiv:1202.3801 · doi:10.1142/S0217732312501817
Abstract
We analyze the effects caused by an anomalous single-particle dispersion relation suggested in several quantum-gravity models, upon the thermodynamics of a Bose-Einstein condensate trapped in a generic 3-dimensional power-law potential. We prove that the shift in the condensation temperature, caused by a deformed dispersion relation, described as a non-trivial function of the number of particles and the shape associated to the corresponding trap, could provide bounds for the parameters associated to such deformation. Additionally, we calculate the fluctuations in the number of particles as a criterium of thermodynamic stability for these systems. We show that the apparent instability caused by the anomalous fluctuations in the thermodynamic limit can be suppressed considering the lowest energy associated to the system in question.
10 pages. arXiv admin note: text overlap with arXiv:1202.3806
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- Effect of the Minimal Length on Bose-Einstein Condensation in the Relativistic Ideal Bose Gas
- Superfluids in Polymer Quantum Mechanics
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- Stability Analysis of a Bose-Einstein Condensate Trapped in a Generic Potential
- Weakly interacting Bose-Einstein condensates in temperature-dependent generic traps