Fragmentation Temperature of 1D and 3D Quantum Droplets in a BEC Mixture
arXiv:2604.24375 · doi:10.1007/s10909-026-03402-x
Abstract
In a mixture of two Bose-Einstein condensates, the interactions can be tuned such that self-bound objects called quantum droplets appear. Whereas the ground states of such quantum droplets at finite temperature have been studied for three- and one-dimensional configurations, the possible fragmentation of these droplets has so far not been considered in these studies. In this paper, we show that droplets can lower their free energy by splitting or fragmenting in a combination of multiple smaller droplets and/or a gas. Three-dimensional droplets will split when the interspecies interaction strength is considerably stronger than the intraspecies interaction strength, and the number of atoms is of the same order as the minimum number of atoms necessary to form a droplet. One-dimensional droplets will fragment as long as the intraspecies and interspecies interactions strength do not vary too much in strength and the density is not to big compared with the scattering length. If the temperature rises, 1D droplets will split by expelling atoms, forming a gas of predominantly free atoms and pairs of atoms. These pairs remain present in the system up to considerably high temperatures compared to the transition temperature. Our results provide important insights on the stability of these droplets.
30 pages including 1 appendix, 7 figures
References in corpus (16)
- Quantum liquid droplets in a mixture of Bose-Einstein condensates
- Quantum-fluctuation-driven crossover from a dilute Bose-Einstein condensate to a macro-droplet in a dipolar quantum fluid
- Collisions of self-bound quantum droplets
- Liquid quantum droplets of ultracold magnetic atoms
- Beyond Lee-Huang-Yang description of self-bound Bose mixtures
- Collective excitations of a spherical ultradilute quantum droplet
- Quantum self-bound droplets in Bose-Bose mixtures: Effects of higher-order quantum and thermal fluctuations
- Thermodynamics of dilute Bose gases: Beyond mean-field theory for binary mixtures of Bose-Einstein condensate
- Dynamical formation of multiple quantum droplets in a Bose-Bose mixture
- Interaction of One-Dimensional Quantum Droplets with Potential Wells and Barriers
- Thermal destabilization of self-bound ultradilute quantum droplets
- Complex contact interaction for systems with short-range two-body loss
- Breakup of quantum liquid filaments into droplets
- Weber number and the outcome of binary collisions between quantum droplets
- Localization and splitting of a quantum droplet with a potential defect
- Beyond-mean-field effects in mixtures: few-body and many-body aspects