Order from chaos with adaptive circuits on quantum hardware

Fuente: arXiv
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Hauptverfasser: Pokharel, Bibek, Pan, Haining, Aziz, Kemal, Govia, Luke C. G., Ganeshan, Sriram, Iadecola, Thomas, Wilson, Justin H., Jones, Barbara A., Deshpande, Abhinav, Pixley, Jedediah H., Takita, Maika
Format: Preprint
Veröffentlicht: 2025
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author Pokharel, Bibek
Pan, Haining
Aziz, Kemal
Govia, Luke C. G.
Ganeshan, Sriram
Iadecola, Thomas
Wilson, Justin H.
Jones, Barbara A.
Deshpande, Abhinav
Pixley, Jedediah H.
Takita, Maika
author_facet Pokharel, Bibek
Pan, Haining
Aziz, Kemal
Govia, Luke C. G.
Ganeshan, Sriram
Iadecola, Thomas
Wilson, Justin H.
Jones, Barbara A.
Deshpande, Abhinav
Pixley, Jedediah H.
Takita, Maika
contents Programmable quantum devices provide a platform to control the coherent dynamics of quantum wavefunctions. Here we experimentally realize adaptive monitored quantum circuits, which incorporate conditional feedback into non-unitary evolution, to control quantum chaotic dynamics using a combination of local mid-circuit measurements and resets. The experiments are performed with an IBM superconducting quantum processor using up to 100 qubits that samples a quantum version of the classically chaotic Bernoulli map. This map scrambles quantum information, while local measurements and feedback attempt to steer the dynamics toward a state that is a fixed point of the map. This competition drives a dynamical phase transition between quantum and classical dynamics that we observe experimentally and describe theoretically using noisy simulations, matrix product states, and mappings to statistical mechanics models. Estimates of the universal critical properties are obtained to high accuracy on the quantum computer thanks to the large number of qubits utilized in the calculation. By successfully applying up to nearly 5000 entangling gates and 5000 non-unitary mid-circuit operations on systems up to 100 qubits, this experiment serves as a signpost on the route towards fault tolerance.
format Preprint
id arxiv_https___arxiv_org_abs_2509_18259
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Order from chaos with adaptive circuits on quantum hardware
Pokharel, Bibek
Pan, Haining
Aziz, Kemal
Govia, Luke C. G.
Ganeshan, Sriram
Iadecola, Thomas
Wilson, Justin H.
Jones, Barbara A.
Deshpande, Abhinav
Pixley, Jedediah H.
Takita, Maika
Quantum Physics
Disordered Systems and Neural Networks
Statistical Mechanics
Strongly Correlated Electrons
Chaotic Dynamics
Programmable quantum devices provide a platform to control the coherent dynamics of quantum wavefunctions. Here we experimentally realize adaptive monitored quantum circuits, which incorporate conditional feedback into non-unitary evolution, to control quantum chaotic dynamics using a combination of local mid-circuit measurements and resets. The experiments are performed with an IBM superconducting quantum processor using up to 100 qubits that samples a quantum version of the classically chaotic Bernoulli map. This map scrambles quantum information, while local measurements and feedback attempt to steer the dynamics toward a state that is a fixed point of the map. This competition drives a dynamical phase transition between quantum and classical dynamics that we observe experimentally and describe theoretically using noisy simulations, matrix product states, and mappings to statistical mechanics models. Estimates of the universal critical properties are obtained to high accuracy on the quantum computer thanks to the large number of qubits utilized in the calculation. By successfully applying up to nearly 5000 entangling gates and 5000 non-unitary mid-circuit operations on systems up to 100 qubits, this experiment serves as a signpost on the route towards fault tolerance.
title Order from chaos with adaptive circuits on quantum hardware
topic Quantum Physics
Disordered Systems and Neural Networks
Statistical Mechanics
Strongly Correlated Electrons
Chaotic Dynamics
url https://arxiv.org/abs/2509.18259