Continuous-wave solutions and modulational instability in spinor condensates of positronium
arXiv:1801.00590 · doi:10.1088/1361-6455/aaa399
Abstract
We obtain general continuous-wave (CW)\ solutions in the model of a spinor positronium condensate in the absence of magnetic field. The CW solutions with both in-phase () and out-of-phase () spin components exist, with their ranges limited by the total particle density, . In the limit of negligible population exchange between the spin components, the CW solutions are found to be stable or unstable, depending on the particle density of the para positronium. Ortho positronium, in the spinor state, forms a ferromagnetic condensate with stable in-phase CW solutions only. Subsequent examination of the modulational instability (MI) is carried out both in the limit case of identical wavenumbers in the spin components, , and in the more general case of too. The CW solutions with and solutions, which are stable in the case of , are unstable for , for the natural repulsive sign of the nonlinearities. The total particle density, , in the limit of is found to have a significant role for the stability of the condensate, which is determined by the sign of the self-interaction nonlinearity.
References in corpus (9)
- Scalable Spin Squeezing for Quantum-Enhanced Magnetometry with Bose-Einstein Condensates
- High-Resolution Magnetometry with a Spinor Bose-Einstein Condensate
- Dark solitons in F=1 spinor Bose--Einstein condensate
- Modulation instability and solitary wave formation in two-component Bose-Einstein condensates
- Multicomponent Bright Solitons in F = 2 Spinor Bose-Einstein Condensates
- Spin dynamics and structure formation in a spin-1 condensate in a magnetic field
- Active SU(1,1) atom interferometry
- Sound waves and modulational instabilities on continuous wave solutions in spinor Bose-Einstein condensates
- Continuous wave solutions in spinor Bose-Einstein condensates