Guardado en:
Detalles Bibliográficos
Autores principales: Anand, Amit, Srivastava, Sanchit, Gangopadhyay, Sayan, Ghose, Shohini
Formato: Preprint
Publicado: 2021
Materias:
Acceso en línea:https://arxiv.org/abs/2107.09809
Etiquetas: Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
_version_ 1866913016757354496
author Anand, Amit
Srivastava, Sanchit
Gangopadhyay, Sayan
Ghose, Shohini
author_facet Anand, Amit
Srivastava, Sanchit
Gangopadhyay, Sayan
Ghose, Shohini
contents We show that currently available noisy intermediate-scale quantum (NISQ) computers can be used for versatile quantum simulations of chaotic systems. We introduce a novel classical-quantum hybrid approachfor exploring the dynamics of the chaotic quantum kicked top (QKT) on a universal quantum computer. The programmability of this approach allows us to experimentally explore the complete range of QKT chaoticity parameter regimes inaccessible to previous studies. Furthermore, the number of gates in our simulation does not increase with the number of kicks, thus making it possible to study the QKT evolution for arbitrary number of kicks without fidelity loss. Using a publicly accessible NISQ computer (IBMQ), we observe periodicities in the evolution of the 2-qubit QKT, as well as signatures of chaos in the time-averaged 2-qubit entanglement. We also demonstrate a connection between entanglement and delocalization in the 2-qubit QKT, confirming theoretical predictions.
format Preprint
id arxiv_https___arxiv_org_abs_2107_09809
institution arXiv
publishDate 2021
record_format arxiv
spellingShingle Simulating quantum chaos on a quantum computer
Anand, Amit
Srivastava, Sanchit
Gangopadhyay, Sayan
Ghose, Shohini
Quantum Physics
We show that currently available noisy intermediate-scale quantum (NISQ) computers can be used for versatile quantum simulations of chaotic systems. We introduce a novel classical-quantum hybrid approachfor exploring the dynamics of the chaotic quantum kicked top (QKT) on a universal quantum computer. The programmability of this approach allows us to experimentally explore the complete range of QKT chaoticity parameter regimes inaccessible to previous studies. Furthermore, the number of gates in our simulation does not increase with the number of kicks, thus making it possible to study the QKT evolution for arbitrary number of kicks without fidelity loss. Using a publicly accessible NISQ computer (IBMQ), we observe periodicities in the evolution of the 2-qubit QKT, as well as signatures of chaos in the time-averaged 2-qubit entanglement. We also demonstrate a connection between entanglement and delocalization in the 2-qubit QKT, confirming theoretical predictions.
title Simulating quantum chaos on a quantum computer
topic Quantum Physics
url https://arxiv.org/abs/2107.09809