Quasi-one-dimensional outflow from a dilute gas Bose-Einstein condensate reservoir is a promising system for the creation of analog Hawking radiation. We use numerical modeling to show that stable sonic horizons exist in such a system under realistic conditions, taking into account the transverse dimensions and three-body loss. We find that loss limits the analog Hawking temperatures achievable in the hydrodynamic regime, with sodium condensates allowing the highest temperatures. A condensate of 300.2em0ex000 atoms, with transverse confinement frequency ω_⊥=6800×2π0.3em0exHz, yields horizon temperatures of about 200.3em0exnK over a period of 500.3em0exms. This is at least four times higher than for other atoms commonly used for Bose-Einstein condensates.
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Wüster et al. (2007) studied this question.
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