dc.contributor.author
Goihl, Marcel
dc.contributor.author
Walk, Nathan
dc.contributor.author
Eisert, Jens
dc.contributor.author
Tarantino, Nicolas
dc.date.accessioned
2021-02-19T11:30:23Z
dc.date.available
2021-02-19T11:30:23Z
dc.identifier.uri
https://refubium.fu-berlin.de/handle/fub188/29697
dc.identifier.uri
http://dx.doi.org/10.17169/refubium-29439
dc.description.abstract
Spin chains with symmetry-protected edge modes are promising candidates to realize intrinsically robust physical qubits that can be used for the storage and processing of quantum information. In any experimental realization of such physical systems, weak perturbations in the form of induced interactions and disorder are unavoidable and can be detrimental to the stored information. At the same time, the latter may in fact be beneficial; for instance, by deliberately inducing disorder which causes the system to localize. We explore the potential of using an XZX cluster Hamiltonian to encode quantum information into the local edge modes and comprehensively investigate the influence of both many-body interactions and disorder on their stability over time, adding substance to the narrative that many-body localization may stabilize quantum information. We recover the edge state at each time step, allowing us to reconstruct the quantum channel that captures the locally constrained out-of-equilibrium time evolution. With this representation in hand, we analyze how well classical and quantum information are preserved over time as a function of disorder and interactions. We find that the performance of the edge qubits varies dramatically between disorder realizations. Whereas some show a smooth decoherence over time, a sizable fraction is rapidly rendered unusable as memories. We also find that the stability of the classical information-a precursor for the usefulness of the chain as a quantum memory-depends strongly on the direction in which the bit is encoded. When employing the chain as a genuine quantum memory, encoded qubits are most faithfully recovered for low interaction and high disorder.
en
dc.format.extent
10 Seiten
dc.rights.uri
https://creativecommons.org/licenses/by/4.0/
dc.subject
Quantum memories
en
dc.subject
Symmetry protected topological states
en
dc.subject
Topological quantum computing
en
dc.subject.ddc
500 Naturwissenschaften und Mathematik::530 Physik::530 Physik
dc.title
Harnessing symmetry-protected topological order for quantum memories
dc.type
Wissenschaftlicher Artikel
dcterms.bibliographicCitation.articlenumber
013120
dcterms.bibliographicCitation.doi
10.1103/PhysRevResearch.2.013120
dcterms.bibliographicCitation.journaltitle
Physical Review Research
dcterms.bibliographicCitation.number
1
dcterms.bibliographicCitation.volume
2
dcterms.bibliographicCitation.url
https://doi.org/10.1103/PhysRevResearch.2.013120
refubium.affiliation
Physik
refubium.affiliation.other
Dahlem Center für komplexe Quantensysteme

refubium.resourceType.isindependentpub
no
dcterms.accessRights.openaire
open access
dcterms.isPartOf.eissn
2643-1564
refubium.resourceType.provider
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