Floquet quantum multiparameter estimation with periodic-driving-induced topological phase transition

Fuente: arXiv
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Autori principali: Yang, Yu, Tang, Yuyang, Zhang, Pei, Li, Fuli
Natura: Preprint
Pubblicazione: 2026
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author Yang, Yu
Tang, Yuyang
Zhang, Pei
Li, Fuli
author_facet Yang, Yu
Tang, Yuyang
Zhang, Pei
Li, Fuli
contents Periodically driven systems provide a powerful platform for quantum multiparameter estimation. Constructing a static effective Hamiltonian in a proper rotating frame is commonly employed to assess the attainable precision. However, such an approach becomes nonfeasible for more general time-periodically driven systems. To tackle this dilemma, we develop a quantum multiparameter estimation strategy in the Floquet theory framework. The contributions of Floquet eigenmodes, quasienergies, and multi-photon processes to the quantum Fisher information matrix and measurement incompatibility are determined, respectively. Moreover, this approach is applied to a ring-shaped Rashba spin-orbit interferometer model exhibiting the topological phase transition (TPT). In the vicinity of the TPT boundary, we reveal a pronounced enhancement in the estimation precision of multiple parameters with the Heisenberg limit scaling and even higher. Meanwhile, the measurement incompatibility vanishes in an oscillatory manner, and the stroboscopic projective measurement enables the highest estimation precision achievable. This work provides a complete Floquet picture for time-dependent critical quantum multiparameter estimation.
format Preprint
id arxiv_https___arxiv_org_abs_2605_04463
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Floquet quantum multiparameter estimation with periodic-driving-induced topological phase transition
Yang, Yu
Tang, Yuyang
Zhang, Pei
Li, Fuli
Quantum Physics
Periodically driven systems provide a powerful platform for quantum multiparameter estimation. Constructing a static effective Hamiltonian in a proper rotating frame is commonly employed to assess the attainable precision. However, such an approach becomes nonfeasible for more general time-periodically driven systems. To tackle this dilemma, we develop a quantum multiparameter estimation strategy in the Floquet theory framework. The contributions of Floquet eigenmodes, quasienergies, and multi-photon processes to the quantum Fisher information matrix and measurement incompatibility are determined, respectively. Moreover, this approach is applied to a ring-shaped Rashba spin-orbit interferometer model exhibiting the topological phase transition (TPT). In the vicinity of the TPT boundary, we reveal a pronounced enhancement in the estimation precision of multiple parameters with the Heisenberg limit scaling and even higher. Meanwhile, the measurement incompatibility vanishes in an oscillatory manner, and the stroboscopic projective measurement enables the highest estimation precision achievable. This work provides a complete Floquet picture for time-dependent critical quantum multiparameter estimation.
title Floquet quantum multiparameter estimation with periodic-driving-induced topological phase transition
topic Quantum Physics
url https://arxiv.org/abs/2605.04463