Probing Complex-energy Topology via Non-Hermitian Absorption Spectroscopy in a Trapped Ion Simulator
arXiv:2303.15026 · doi:10.1103/PhysRevLett.130.163001
Abstract
Non-Hermitian systems generically have complex energies, which may host topological structures, such as links or knots. While there has been great progress in experimentally engineering non-Hermitian models in quantum simulators, it remains a significant challenge to experimentally probe complex energies in these systems, thereby making it difficult to directly diagnose complex-energy topology. Here, we experimentally realize a two-band non-Hermitian model with a single trapped ion whose complex eigenenergies exhibit the unlink, unknot or Hopf link topological structures. Based on non-Hermitian absorption spectroscopy, we couple one system level to an auxiliary level through a laser beam and then experimentally measure the population of the ion on the auxiliary level after a long period of time. Complex eigenenergies are then extracted, illustrating the unlink, unknot or Hopf link topological structure. Our work demonstrates that complex energies can be experimentally measured in quantum simulators via non-Hermitian absorption spectroscopy, thereby opening the door for exploring various complex-energy properties in non-Hermitian quantum systems, such as trapped ions, cold atoms, superconducting circuits or solid-state spin systems.
12 pages, 8 figures
References in corpus (7)
- Many-Body Physics with Ultracold Gases
- Topological Origin of Non-Hermitian Skin Effects
- Edge Modes, Degeneracies, and Topological Numbers in Non-Hermitian Systems
- Weyl Exceptional Rings in a Three-Dimensional Dissipative Cold Atomic Gas
- Observation of parity-time symmetry breaking in a single spin system
- Flat Band in Disorder Driven Non-Hermitian Weyl Semimetals
- Precision measurement of the lifetime of the 6p 2P_1/2 level of Yb+