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    Optimal quantum transport on a ring via locally monitored chiral quantum walks

    Sara Finocchiaro1,2, Giovanni O. Luilli3, Giuliano Benenti1,2,*, Matteo G. A. Paris2,3,†, and Luca Razzoli1,2,‡,§

    • *Contact author: giuliano.benenti@uninsubria.it
    • †Contact author: matteo.paris@unimi.it
    • ‡Contact author: luca.razzoli@unipv.it
    • §Present address: Dipartimento di Fisica “Alessandro Volta,” Università degli Studi di Pavia, Via Bassi 6, 27100 Pavia, Italy and INFN, Sezione di Pavia, Via Bassi 6, 27100 Pavia, Italy.

    Phys. Rev. E 112, 054142 – Published 26 November, 2025

    DOI: https://doi.org/10.1103/svrb-b72k

    Abstract

    In purely coherent transport on finite networks, destructive interference can significantly suppress transfer probabilities, which can only reach high values through careful fine-tuning of the evolution time or tailored initial-state preparations. We address this issue by investigating excitation transfer on a ring, modeling it as a locally monitored continuous-time chiral quantum walk. Chirality, introduced through time-reversal symmetry breaking, imparts a directional bias to the coherent dynamics and can lift dark states. Local monitoring, implemented via stroboscopic projective measurements at the target site, provides a practical detection protocol without requiring fine-tuning of the evolution time. By analyzing the interplay between chirality and measurement frequency, we identify optimal conditions for maximizing the asymptotic detection probability. The optimization of this transfer protocol relies on the spectral properties of the Perron-Frobenius operator, which capture the asymptotic nonunitary dynamics, and on the analysis of dark states. Our approach offers a general framework for enhancing quantum transport in monitored systems.

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