English

Postselection induced localization and coherence in quantum walks on heterogeneous networks

Quantum Physics 2026-03-20 v1 Other Condensed Matter

Abstract

Postselection of quantum trajectories is known effectively introduce nonlinearity into dynamics of open quantum systems. We study the effect of such non-linearity in continuous-time quantum walks (CTQWs) on networks with homogeneous and heterogeneous degree distributions. Using the recently proposed nonlinear Lindblad master equation (NLME), we investigate the dynamics under two decoherence mechanisms: Haken-Strobl and quantum stochastic walk (QSW). Our analysis reveals a striking dichotomy: under Haken-Strobl decoherence the nonlinear contributions precisely cancel, yielding a uniform steady state independent of postselection details. In stark contrast, QSW decoherence permits postselection to break dynamical balance on heterogeneous networks, inducing robust localization preferentially at low-degree (peripheral) nodes. Remarkably, this localized state maintains finite quantum coherence. Extending our results to many-body spin systems, we demonstrate that degree heterogeneity similarly stabilizes localization of spin-up excitations in spin-down backgrounds, enhancing entanglement preservation. These findings establish degree heterogeneity and postselection as joint control parameters for engineering quantum transport and localization in dissipative dynamics.

Keywords

Cite

@article{arxiv.2603.17629,
  title  = {Postselection induced localization and coherence in quantum walks on heterogeneous networks},
  author = {Adithya L J and Suraj S Hegde and Chandrakala Meena},
  journal= {arXiv preprint arXiv:2603.17629},
  year   = {2026}
}
R2 v1 2026-07-01T11:26:00.562Z