Ubiquity of the quantum boomerang effect in Hermitian Anderson-localized systems
Flavio Noronha, Tommaso Macr\`i

TL;DR
This paper demonstrates the widespread occurrence of the quantum boomerang effect in various disordered systems, providing analytical conditions and examples, including non-Hermitian and symmetry-broken models, expanding understanding of localization phenomena.
Contribution
It establishes general analytical conditions for the quantum boomerang effect in disordered systems, including non-Hermitian and symmetry-broken cases, and provides concrete lattice model examples.
Findings
QBE observed in Hermitian Anderson-localized systems
QBE can occur in non-Hermitian models with real spectra
QBE is absent in weakly interacting bosonic systems
Abstract
A particle with finite initial velocity in a disordered potential comes back and in average stops at the original location. This phenomenon dubbed 'quantum boomerang effect' (QBE) has been recently observed in an experiment simulating the quantum kicked-rotor model [Phys. Rev. X 12, 011035 (2022)]. We provide analytical arguments that support QBE in a wide class of disordered systems. Sufficient conditions to observe the real-space QBE effect are (a) Anderson localization, (b) the reality of the spectrum for the case of non-Hermitian systems, (c) the ensemble of disorder realizations be invariant under the application of , and (d) the initial state is an eigenvector of , where is a reflection and is the time-reversal operator. The QBE can be observed in momentum-space in systems with dynamical…
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Taxonomy
TopicsQuantum, superfluid, helium dynamics · Cold Atom Physics and Bose-Einstein Condensates · Random lasers and scattering media
