Symmetry-assisted resonance transmission of identical particles
arXiv:1502.05325 · doi:10.1103/PhysRevA.93.012705
Abstract
We report novel interference effects in wave packet scattering of identical particles incident on the same side of a resonant barrier, different from those observed in Hong-Ou-Mandel experiments. These include significant changes in the mean number of transmissions and full counting statistics, as well as "bunching" and "anti-bunching" effects in the all-particles transmission channel. With several resonances involved, pseudo-resonant driving of the two-level system in the barrier, may result in sharp enhancement of scattering probabilities for certain values of temporal delay between the particles.
6 figures
References in corpus (14)
- Entangling Independent Photons by Time Measurement
- An atomic Hong-Ou-Mandel experiment
- Zero-Transmission Law for Multiport Beam Splitters
- General rules for bosonic bunching in multimode interferometers
- Counting Statistics of Many-Particle Quantum Walks
- Wave-packet Formalism of Full Counting Statistics
- Tunable source of correlated atom beams
- Tunneling decay of two interacting bosons in an asymmetric double-well potential: A spectral approach
- Indistinguishability of independent single photons
- Time-dependent exchange and tunneling: detection at the same place of two electrons emitted simultaneously from different sources
- Two-dimensional Fermionic Hong-Ou-Mandel Interference with Weyl Fermions
- Interference effects in tunnelling of "cat" wave packet states
- Quantum law of rare events for systems with Bose-Einstein statistics
- Statistics of resonance and non-resonance tunnelling of fermionised cold atoms