Collision of two self-trapped atomic matter wave packets in an optical ring cavity
arXiv:2110.01199 · doi:10.1103/PhysRevE.104.044201
Abstract
The interaction between atomic Bose-Einstein condensate (BEC) and light field in an optical ring cavity gives rise to many interesting phenomena such as supersolid and movable self-trapped matter wave packets. Here we examined the collision of two self-trapped atomic matter wave packets in an optical ring cavity, and abundant colliding phenomena have been found in the system. Depending on the magnitude of colliding velocity, the collision dynamics exhibit very different features compared with the cavity-free case. When the initial colliding velocities of the two wave packets are small, they correlatedly oscillate around their initial equilibrium positions with a small amplitude. Increasing the collision velocity leads to severe scattering of the BEC atoms; after the collision, the two self-trapped wave packets usually break into small pieces. Interestingly, we found that such a medium velocity collision is of great phase sensitivity, which may make the system useful in precision matter wave interferometry. When the colliding velocity is further increased, in the bad cavity limit, the two wave packets collide phenomenally similar to two classical particles -- they firstly approach each other, then separate with their shape virtually maintained. However, beyond the bad cavity limit, they experience severe spatial spreading.
References in corpus (12)
- Cold atoms in cavity-generated dynamical optical potentials
- Roton-type mode softening in a quantum gas with cavity-mediated long-range interactions
- Collisions of matter-wave solitons
- Collisions of self-bound quantum droplets
- Sagnac Interferometry Using Bright Matter-Wave Solitons
- Excess noise depletion of a Bose-Einstein condensate in an optical cavity
- Ultracold atoms in a cavity mediated double-well system
- Singular Soliton Molecules of the Nonlinear Schrodinger Equation
- Atomic selfordering in a ring cavity with counterpropagating pump
- Probing and characterizing the growth of a crystal of ultracold bosons and light
- Bose-Einstein condensates in an atom-optomechanical system with effective global non-uniform interaction
- Self-trapped atomic matter wave in a ring cavity