From Bell Products to Greenberger-Horne-Zeilinger states: Quantum Memories via emergent Hamiltonians
arXiv:2510.01117 · doi:10.1103/q7xc-vhmy
Abstract
With the advent of exquisite quantum emulators, storing highly entangled many-body states becomes essential. While entanglement typically builds over time when evolving a quantum system initialized in a product state, freezing that information at any given instant requires quenching to a Hamiltonian with the time-evolved state as an eigenstate, a concept we realize via an emergent Hamiltonian framework. While the emergent Hamiltonian is generically nonlocal and may lack a closed form, we show examples where it is exact and local, thereby enabling, in principle, indefinite state storage limited only by experimental imperfections. Unlike other phenomena, such as many-body localization, our method preserves both local and global properties of the quantum state. In some of our examples, we demonstrate that this protocol can be used to store maximally entangled multiqubit states, such as tensor products of Bell states, or fragile, globally distributed entangled states, in the form of Greenberger-Horne-Zeilinger states, which are often challenging to initialize in actual devices.
14 pages, 8 figures
References in corpus (19)
- Supplementary information for "Quantum supremacy using a programmable superconducting processor"
- Thermalization and its mechanism for generic isolated quantum systems
- Surface codes: Towards practical large-scale quantum computation
- Many body localization and thermalization in quantum statistical mechanics
- Localization of interacting fermions at high temperature
- The distribution of the ratio of consecutive level spacings in random matrix ensembles
- Nonlinear atom interferometer surpasses classical precision limit
- Signatures of Many-Body Localization in a Controlled Open Quantum System
- Mirror Inversion of Quantum States in Linear Registers
- Observing non-ergodicity due to kinetic constraints in tilted Fermi-Hubbard chains
- Many-Body Localization in the Age of Classical Computing
- Entanglement spreading in a many-body localized system
- Stark many-body localization on a superconducting quantum processor
- Slow many-body delocalization beyond one dimension
- Metrological characterisation of non-Gaussian entangled states of superconducting qubits
- Enhanced quantum state transfer: Circumventing quantum chaotic behavior
- Many-body delocalization from embedded thermal inclusion
- Probing prethermal nonergodicity through measurement outcomes of monitored quantum dynamics
- Emergent eigenstate solution for generalized thermalization