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Published on: August 17, 2017
Quasi-solitons in Rydberg atom chains
Aron Kerschbaumer1, Jean-Yves Desaules2, Marko Ljubotina3,4,5
1Institute of Science and Technology Austria (ISTA), Klosterneuburg, Austria. aron.kerschbaumer@ist.ac.at.
Abstract:
Solitons-localized wave packets that travel without spreading-play a central role in understanding transport and properties of nonlinear systems. In quantum many-body systems, however, such robust excitations are typically destroyed by thermalization. Here, we theoretically demonstrate the existence of solitonic excitations in high-energy states of Rydberg atom chains in the regime of strong nearest-neighbor Rydberg blockade. These localized wave packets propagate directionally atop a special class of reviving initial states related to quantum many-body scars and are capable of carrying energy. Exhibiting long coherence times, these states constitute a form of non-ergodic quantum dynamics and can be efficiently implemented on Rydberg atom simulators. In this work, in addition to a phenomenological description of solitons, we identify their counterpart in a classical nonlinear dynamical system, demonstrate their potential use in quantum information transfer, and conjecture their relevance for anomalous energy transport reported in numerical studies of Rydberg atom arrays.
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