James D. Watson

James D. Watsonjames-d-watson

Oct 23 2024 21:29 UTC
Oct 23 2024 20:34 UTC
Oct 23 2024 20:34 UTC
Oct 22 2024 20:24 UTC
Oct 22 2024 20:24 UTC
Oct 21 2024 13:16 UTC
Oct 21 2024 02:57 UTC
Oct 18 2024 02:00 UTC
Recent experimental progress in controlling open quantum systems enables the pursuit of mixed-state nonequilibrium quantum phases. We investigate whether open quantum systems hosting mixed-state symmetry-protected topological states as steady states retain this property under symmetric perturbations. Focusing on the decohered cluster state -- a mixed-state symmetry-protected topological state protected by a combined strong and weak symmetry -- we construct a parent Lindbladian that hosts it as a steady state. This Lindbladian can be mapped onto exactly solvable reaction-diffusion dynamics, even in the presence of certain perturbations, allowing us to solve the parent Lindbladian in detail and reveal previously-unknown steady states. Using both analytical and numerical methods, we find that typical symmetric perturbations cause strong-to-weak spontaneous symmetry breaking at arbitrarily small perturbations, destabilize the steady-state mixed-state symmetry-protected topological order. However, when perturbations introduce only weak symmetry defects, the steady-state mixed-state symmetry-protected topological order remains stable. Additionally, we construct a quantum channel which replicates the essential physics of the Lindbladian and can be efficiently simulated using only Clifford gates, Pauli measurements, and feedback.
Oct 14 2024 12:59 UTC
Oct 14 2024 12:59 UTC
Oct 12 2024 02:01 UTC
Oct 10 2024 17:56 UTC
Oct 10 2024 17:56 UTC
James D. Watson scited Hidden-State Proofs of Quantumness
Oct 10 2024 13:46 UTC
James D. Watson scited Universal transversal gates
Oct 10 2024 13:46 UTC
Oct 09 2024 14:17 UTC
James D. Watson scited Succinct Fermion Data Structures