arXiv · 2111.04754
Decoherence Induced Exceptional Points in a Dissipative Superconducting Qubit
Abstract
Open quantum systems interacting with an environment exhibit dynamics described by the combination of dissipation and coherent Hamiltonian evolution. Taken together, these effects are captured by a Liouvillian superoperator. The degeneracies of the (generically non-Hermitian) Liouvillian are exceptional points, which are associated with critical dynamics as the system approaches steady state. We use a superconducting transmon circuit coupled to an engineered environment to observe two different types of Liouvillian exceptional points that arise either from the interplay of energy loss and decoherence or purely due to decoherence. By dynamically tuning the Liouvillian superoperators in real time we observe a non-Hermiticity-induced chiral state transfer. Our study motivates a new look at open quantum system dynamics from the vantage of Liouvillian exceptional points, enabling applications of non-Hermitian dynamics in the understanding and control of open quantum systems.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Weijian Chen, Maryam Abbasi, Byung Ha, Serra Erdamar, Yogesh N. Joglekar, Kater W. Murch. 2021-11-08. Decoherence Induced Exceptional Points in a Dissipative Superconducting Qubit. https://doi.org/10.1103/physrevlett.128.110402
Cite the original work for its findings. Save a collection to share your selection of sources.