Restoring Adiabatic State Transfer in Time-Modulated Non-Hermitian Systems
Authors/Creators
- 1. Joint Laboratory of Optics of Palacký University and Institute of Physics of CAS, Faculty of Science
- 2. Institute of Physics, Ecole Polytechnique F´ed´erale de Lausanne (EPFL)
- 3. Center for Quantum Science and Engineering, Ecole Polytechnique F´ed´erale de Lausanne (EPFL)
- 4. Theoretical Quantum Physics Laboratory, Cluster for Pioneering Research, RIKEN
- 5. Quantum Information Physics Theory Research Team, Quantum Computing Center, RIKEN
- 6. Institute of Spintronics and Quantum Information, Faculty of Physics, Adam Mickiewicz University
- 7. Department of Engineering Science and Mechanics, and Materials Research Institute (MRI)
- 8. Physics Department, The University of Michigan,
Description
Non-Hermitian systems have attracted much interest in recent decades, driven partly by the existence of exotic spectral singularities, known as exceptional points (EPs), where the dimensionality of the system evolution operator is reduced. Among various intriguing applications, the discovery of EPs has suggested the potential for implementing a symmetric mode switch, when encircling them in a system parameter space. However, subsequent theoretical and experimental works have revealed that dynamical encirclement of EPs invariably results in asymmetric mode conversion; namely, the mode switching depends only on the winding direction but not on the initial state. This chirality arises from the failure of adiabaticity due to the complex spectrum of non-Hermitian systems. Although the chirality revealed has undoubtedly made a
significant impact in the field, a realization of the originally sought symmetric adiabatic passage in nonHermitian systems with EPs has since been elusive. In this work, we bridge this gap and theoretically demonstrate that adiabaticity, and therefore a symmetric state transfer, is achievable when dynamically winding around an EP. This becomes feasible by specifically choosing a trajectory in the system parameter space along which the corresponding evolution operator attains a real spectrum. Our findings, thus, offer a promise for advancing various wave manipulation protocols in both quantum and classical domains.
Files
PhysRevLett.133.113802.pdf
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Additional details
Related works
- Describes
- Dataset: 10.5281/zenodo.14177707 (DOI)
- Has version
- Preprint: arXiv:2402.15298 (arXiv)