Decoherence dynamics across sub-Planckian to arbitrary scales using kitten states

Fuente: arXiv
Guardado en:
Detalles Bibliográficos
Autores principales: Akhtar, Naeem, Peng, Jia-Xin, Hailin, Tan, Yang, Xiaosen, Wang, Dong
Formato: Preprint
Publicado: 2025
Materias:
Acceso en línea:
Etiquetas: Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
_version_ 1866911324369321984
author Akhtar, Naeem
Peng, Jia-Xin
Hailin, Tan
Yang, Xiaosen
Wang, Dong
author_facet Akhtar, Naeem
Peng, Jia-Xin
Hailin, Tan
Yang, Xiaosen
Wang, Dong
contents Environmental decoherence occurs when a quantum system interacts with its surroundings, progressively reducing quantum interference and coherence, complicating the preservation of critical quantum properties over time, especially during experimental implementation. The effect of decoherence varies depending on the phase-space features of quantum states, which are theoretically characterized by the Wigner phase space and appear at different scales. We explore the compass state and its photon-added and photon-subtracted variants, each of which exhibits phase-space features with dimensions beyond the Planck scale, making them suitable for quantum sensing applications. We investigate the interaction of these states with a heat reservoir by employing a range of well-established theoretical techniques, revealing a clear tradeoff between the degree of fineness in the smallest features, such as the sub-Planck structure, and the extent of decoherence. Specifically, increasing the parameters enhances sub-Planck precision in phase space, concomitantly amplifying the fragility of these compass states to undesired decoherence. Our general illustration, validated through these compass states, also applies to any pure quantum state interacting with the considered heat reservoir, exhibiting enhanced sustainability of features at larger phase-space extensions.
format Preprint
id arxiv_https___arxiv_org_abs_2512_15513
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Decoherence dynamics across sub-Planckian to arbitrary scales using kitten states
Akhtar, Naeem
Peng, Jia-Xin
Hailin, Tan
Yang, Xiaosen
Wang, Dong
Quantum Physics
Environmental decoherence occurs when a quantum system interacts with its surroundings, progressively reducing quantum interference and coherence, complicating the preservation of critical quantum properties over time, especially during experimental implementation. The effect of decoherence varies depending on the phase-space features of quantum states, which are theoretically characterized by the Wigner phase space and appear at different scales. We explore the compass state and its photon-added and photon-subtracted variants, each of which exhibits phase-space features with dimensions beyond the Planck scale, making them suitable for quantum sensing applications. We investigate the interaction of these states with a heat reservoir by employing a range of well-established theoretical techniques, revealing a clear tradeoff between the degree of fineness in the smallest features, such as the sub-Planck structure, and the extent of decoherence. Specifically, increasing the parameters enhances sub-Planck precision in phase space, concomitantly amplifying the fragility of these compass states to undesired decoherence. Our general illustration, validated through these compass states, also applies to any pure quantum state interacting with the considered heat reservoir, exhibiting enhanced sustainability of features at larger phase-space extensions.
title Decoherence dynamics across sub-Planckian to arbitrary scales using kitten states
topic Quantum Physics
url https://arxiv.org/abs/2512.15513