Phase transitions in first-detection statistics of monitored long-range quantum walks
Sayan Roy, Shamik Gupta, Giovanna Morigi, Gabriele Perfetto
Abstract
In a quantum walk, the first-detection return probability (FDRP) characterizes salient features, determining whether the quantum walk is transient or recurrent. We study the FDRP of quantum walks on a chain where the initial site is stroboscopically monitored by a detector and the walker performs long-range hopping between sites. We assume that the hopping strength decays with the distance d as d-α and α≥ 0 and show that the power-law exponent α critically determines the behavior of the FDRP. The value α=1 separates recurrent (α<1) from transient (α>1) quantum walks through a continuous phase transition in the total detection probability. For α<1, strong long-range hopping induces localization, resulting in unit total detection probability. Instead, for α>1 the long-range walk is transient and the return probability decays algebraically as a function of time as t-β. The associated decay exponent β features nonanalytic points as a function of α. Such singularities are not exclusively determined by the low-energy spectrum, but are caused by the interference between infrared and ultraviolet energy modes induced by projective measurements, signalling the emergence of critical behavior intrinsic to the non-unitary dynamics. These dynamics are solely controlled by tuning the long-range exponent α and can thus be experimentally probed in atomic and molecular systems.
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