English

Emergent Decoherence Dynamics in Doubly Disordered Spin Networks

Quantum Physics 2025-11-12 v1 Mesoscale and Nanoscale Physics

Abstract

Elucidating the emergence of irreversible macroscopic laws from reversible quantum many-body dynamics is a question of broad importance across all quantum science. Many-body decoherence plays a key role in this transition, yet connecting microscopic dynamics to emergent macroscopic behavior remains challenging. Here, in a doubly disordered electron-nuclear spin network, we uncover an emergent decoherence law for nuclear polarization, eRpteRdte^{-\sqrt{R_{p}t}}e^{-R_{d}t}, that is robust across broad parameter regimes. We trace its microscopic origins to two interdependent decoherence channels: long-range interactions mediated by the electron network and spin transport within the nuclear network exhibiting anomalous, sub-diffusive dynamics. We demonstrate the capacity to control--and even eliminate--either channel individually through a combination of Floquet engineering and (optical) environment modulation. We find that disorder, typically viewed as detrimental, here proves protective, generating isolated electron-free clusters that localize polarization and prolong coherence lifetimes. These findings establish a microscopic framework for manipulating decoherence pathways and suggests engineered disorder as a new design principle for realizing long-lived quantum memories and sensors.

Keywords

Cite

@article{arxiv.2511.07785,
  title  = {Emergent Decoherence Dynamics in Doubly Disordered Spin Networks},
  author = {Cooper M. Selco and Christian Bengs and Chaitali Shah and Zhuorui Zhang and Ashok Ajoy},
  journal= {arXiv preprint arXiv:2511.07785},
  year   = {2025}
}

Comments

7 pages, 4 figures

R2 v1 2026-07-01T07:31:09.236Z