Quantum walks of correlated photons in non-Hermitian photonic lattices
arXiv:2409.10130 · doi:10.1103/PhysRevB.110.094308
Abstract
Entanglement entropy characterizes the correlation of multi-particles and unveils the crucial features of open quantum systems. However, the experimental realization of exploring entanglement in non-Hermitian systems remains a challenge. In parallel, quantum walks have offered the possibility of studying the underlying mechanisms of non-Hermitian physics, which includes exceptional points, the non-Hermitian skin effect, and non-Bloch phase transitions. Unfortunately, these studies have only involved and prevailingly focused on the behavior of a single particle. Here, we propose and experimentally realize quantum walks of two indistinguishable photons in engineered non-Hermitian photonic lattices. We have successfully observed the unidirectional behavior of quantum walks in the bulk far from the edges induced by the skin effect. Moreover, we experimentally reveal the suppression of entanglement that is caused by the skin effect in non-Hermitian systems. Our study may facilitate a deep understanding of entanglement in open quantum many-body systems that are far from thermal equilibrium.
26 pages, 5 figures,
References in corpus (11)
- Quantum walks of correlated particles
- Efficient Light Funneling based on the non-Hermitian Skin Effect
- Periodically-driven quantum systems: Effective Hamiltonians and engineered gauge fields
- Topological Transition in a Non-Hermitian Quantum Walk
- Nonlinear control of PT-symmetry and non-Hermitian topological states
- Detecting topological invariants in nonunitary discrete-time quantum walks
- Photonic Floquet topological insulators in a fractal lattice
- Quantum Entanglement of Non-Hermitian Quasicrystals
- Quantum walks of two correlated photons in a 2D synthetic lattice
- Localization effects from local phase shifts in the modulation of waveguide arrays
- An observable measure of entanglement for pure states of multi-qubit systems