Analogous Hawking radiation and quantum entanglement in two-component Bose-Einstein condensates: the gapped excitations
Wei-Can Syu, Da-Shin Lee, Chi-Yong Lin

TL;DR
This paper investigates analog Hawking radiation in two-component Bose-Einstein condensates, focusing on how gapped excitations affect the particle spectrum and quantum entanglement of Hawking pairs, revealing significant deviations from gapless models.
Contribution
It introduces an analytical model of Hawking radiation in binary BECs with gapped excitations and studies their impact on quantum entanglement using the PHS criterion.
Findings
Gapped excitations create a threshold frequency $$ below which modes do not propagate.
The particle spectrum deviates near the threshold frequency due to the modified grey-body factor.
Gapped excitations can deteriorate and disentangle Hawking pairs, especially at high coupling or near $$.
Abstract
The condensates of cold atoms at zero temperature in the tunable binary Bose-Einstein condensate system are studied with the Rabi transition between atomic hyperfine states where the system can be represented by a coupled two-field model of gapless excitations and gapped excitations. We set up the configuration of the supersonic and subsonic regimes with the acoustic horizon between them in the elongated two-component Bose-Einstein condensates, trying to mimic Hawking radiations, in particular due to the gapped excitations. The simplified step-like sound speed change is adopted for the subsonic-supersonic transition so that the model can be analytically treatable. The effective energy gap term in the dispersion relation of the gapped excitations introduces the threshold frequency in the subsonic regime, below which the propagating modes do not exist. Thus, the…
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