Mesoscopic quantum superposition states of weakly-coupled matter-wave solitons
arXiv:2011.13196 · doi:10.1088/1367-2630/abc601
Abstract
The Josephson junctions (JJs) are at the heart of modern quantum technologies and metrology. In this work we establish quantum features of an atomic soliton Josephson junction (SJJ) device, which consists of two weakly-coupled condensates with negative scattering length. The condensates are trapped in a double-well potential and elongated in one dimension. Starting with classical field theory we map for the first time a two-soliton problem onto the effective two-mode Hamiltonian and perform a second quantization procedure. Compared to the conventional Bosonic Josephson junction (BJJ) condensate system, we show that the SJJ-model in quantum domain exhibits unusual features due to its effective nonlinear strength proportional to the square of total particle number, . A novel self-tuning effect for the effective tunneling parameter is also demonstrated in the SJJ-model, which depends on the particle number and rapidly vanishes as the JJ population imbalance increases. The formation of entangled Fock state superposition is predicted for the quantum SJJ-model, revealing dominant -state components at the "edges" for particle number. We have shown that the obtained quantum state is more resistant to few particle losses from the condensates if tiny components of entangled Fock states are present in the vicinity of the major -state component. This peculiarity of the quantum SJJ-model establishes an important difference from its semiclassical analogue obtained in the framework of Hartree approach.
36 pages, 8 figures
References in corpus (18)
- Ultracold atomic gases in optical lattices: mimicking condensed matter physics and beyond
- Quantum Optical Metrology -- The Lowdown on High-N00N States
- Quantum liquid droplets in a mixture of Bose-Einstein condensates
- Entanglement, EPR-correlations, Bell-nonlocality, and Steering
- Optimal Quantum Phase Estimation
- Collisions of matter-wave solitons
- Three-body recombination at large scattering lengths in an ultracold atomic gas
- Coherent Oscillations in an Exciton-Polariton Josephson Junction
- Entangled Fock states for Robust Quantum Optical Metrology, Imaging, and Sensing
- Observation of universality in ultracold 7Li three-body recombination
- Loss-Induced Limits to Phase Measurement Precision with Maximally Entangled States
- Symmetry breaking of quantum droplets in a dual-core trap
- Relaxation dynamics of the Lieb-Liniger gas following an interaction quench: A coordinate Bethe-ansatz analysis
- Observation of Weak Collapse in a Bose-Einstein Condensate
- Enhanced Resolution of Lossy Interferometry by Coherent Amplification of Single Photons
- Entanglement and phase properties of noisy N00N states
- Quantum theory of bright matter wave solitons in harmonic confinement
- General superposition states associated to the rotational and inversion symmetries in the phase space