Artículo
Decoherence scaling transition in the dynamics of quantum information scrambling
Dominguez, Federico Daniel
; Rodríguez, María Cristina
; Kaiser, Robin; Suter, Dieter; Alvarez, Gonzalo Agustin
Fecha de publicación:
07/2021
Editorial:
American Physical Society
Revista:
Physical Review A: Atomic, Molecular and Optical Physics
ISSN:
2469-9926
e-ISSN:
2469-9934
Idioma:
Inglés
Tipo de recurso:
Artículo publicado
Clasificación temática:
Resumen
Reliable processing of quantum information for developing quantum technologies requires precise control of out-of-equilibrium many-body systems. This is a highly challenging task because the fragility of quantum states to external perturbations increases with the system size. Here, we report on a series of experimental quantum simulations that quantify the sensitivity of a controlled Hamiltonian evolution to perturbations that drive the system away from the targeted evolution. Based on out-of-time ordered correlations, we demonstrate that the decay rate of the process fidelity increases with the effective number K of correlated qubits as Kα. As a function of the perturbation strength, we observe a decoherence scaling transition of the exponent α between two distinct dynamical regimes. In the limiting case below the critical perturbation strength, the exponent α drops sharply below 1, and there is no inherent limit to the number of qubits that can be controlled. This resilient quantum feature of the controlled dynamics of quantum information is promising for reliable control of large quantum systems.
Palabras clave:
Quantum Information
,
Quantum Technologies
,
Decoherence
,
Quantum Control
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Identificadores
Colecciones
Articulos (UE-INN - NODO BARILOCHE)
Articulos de UNIDAD EJECUTORA INSTITUTO DE NANOCIENCIA Y NANOTECNOLOGIA - NODO BARILOCHE
Articulos de UNIDAD EJECUTORA INSTITUTO DE NANOCIENCIA Y NANOTECNOLOGIA - NODO BARILOCHE
Citación
Dominguez, Federico Daniel; Rodríguez, María Cristina; Kaiser, Robin; Suter, Dieter; Alvarez, Gonzalo Agustin; Decoherence scaling transition in the dynamics of quantum information scrambling; American Physical Society; Physical Review A: Atomic, Molecular and Optical Physics; 104; 012402; 7-2021; 1-9
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