Experimental demonstration of coherence flow in - and anti--symmetric systems
arXiv:2111.03803 · doi:10.1038/s42005-021-00728-8
Abstract
Non-Hermitian parity-time () and anti-parity-time ()-symmetric systems exhibit novel quantum properties and have attracted increasing interest. Although many counterintuitive phenomena in - and -symmetric systems were previously studied, coherence flow has been rarely investigated. Here, we experimentally demonstrate single-qubit coherence flow in - and -symmetric systems using an optical setup. In the symmetry unbroken regime, we observe different periodic oscillations of coherence. Particularly, we observe two complete coherence backflows in one period in the -symmetric system, while only one backflow in the -symmetric system. Moreover, in the symmetry broken regime, we observe the phenomenon of stable value of coherence flow. We derive the analytic proofs of these phenomena and show that most experimental data agree with theoretical results within one standard deviation. This work opens avenues for future study on the dynamics of coherence in - and -symmetric systems.
15 pages, 8 figures
References in corpus (9)
- Loss-induced suppression and revival of lasing
- PT-symmetry breaking and laser-absorber modes in optical scattering systems
- PT-Symmetric Phonon Laser
- Observation of parity-time symmetry breaking in a single spin system
- Solitons in PT-symmetric nonlinear lattices
- Mixed-state evolution in the presence of gain and loss
- Liouvillian exceptional points of any order in dissipative linear bosonic systems: Coherence functions and switching between and anti- symmetries
- Scully-Lamb quantum laser model for parity-time-symmetric whispering-gallery microcavities: Gain saturation effects and non-reciprocity
- Stable States with Non-Zero Entropy under Broken -Symmetry