English

Directionality and quantum backfire in continuous-time quantum walks from delocalized states: Exact results

Quantum Physics 2026-02-10 v2 Mathematical Physics math.MP

Abstract

We derive analytical results for continuous-time quantum walks from a new class of initial states with tunable delocalization. The dynamics are governed by a Hamiltonian with complex hopping amplitudes. We provide closed-form equations for key observables, revealing three notable findings: (1) the emergence of directed quantum transport from completely unbiased initial conditions; (2) a quantum backfire effect, where greater initial delocalization enhances short-time spreading but counterintuitively induces a comparatively smaller long-time spreading after a crossing time tcrosst_{\mathrm{cross}}; and (3) an exact characterization of survival probability, showing that the transition to an enhanced t3t^{-3} decay is a fine-tuned effect. Our work establishes a comprehensive framework for controlling quantum transport through the interplay between intermediate initial delocalization and Hamiltonian phase.

Keywords

Cite

@article{arxiv.2510.01584,
  title  = {Directionality and quantum backfire in continuous-time quantum walks from delocalized states: Exact results},
  author = {Jefferson J. Ximenes and Marcelo A. Pires and José M. Villas-Bôas},
  journal= {arXiv preprint arXiv:2510.01584},
  year   = {2026}
}

Comments

Letter (6 pages)+ Supplemental Material (8 pages). Our Python code: https://github.com/jefferson-jx/ctqw_bias_spreading_code