4.8 Article

Quantized topological pumping of solitons in nonlinear photonics and ultracold atomic mixtures

Journal

NATURE COMMUNICATIONS
Volume 13, Issue 1, Pages -

Publisher

NATURE PORTFOLIO
DOI: 10.1038/s41467-022-33478-4

Keywords

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Funding

  1. FRS-FNRS (Belgium)
  2. ERC Starting Grant TopoCold
  3. Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) [EXC-2111-390814868, FOR 2414, 277974659]

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Studying the topological transport and nonlinear effects in synthetic lattice systems is crucial for understanding the influence of topology in physical phenomena. This research provides insights into the motion of solitons and introduces a nonlinear-induced topological transport effect in ultracold quantum mixtures.
Synthetic lattice systems are powerful platforms for studying the influence of intrinsic nonlinearities on topological phenomena. Here the authors elucidate the topological transport of solitons in terms of Wannier functions displacement and they introduce a nonlinearity-induced topological transport effect that could be observed in ultracold quantum mixtures. Exploring the interplay between topological band structures and tunable nonlinearities has become possible with the development of synthetic lattice systems. In this emerging field of nonlinear topological physics, an experiment revealed the quantized motion of solitons in Thouless pumps and suggested that this phenomenon was dictated by the Chern number of the band from which solitons emanate. Here, we elucidate the origin of this nonlinear topological effect, by showing that the motion of solitons is established by the quantized displacement of the underlying Wannier functions. Our general theoretical approach, which fully clarifies the central role of the Chern number in solitonic pumps, provides a framework for describing the topological transport of nonlinear excitations in a broad class of physical systems. Exploiting this interdisciplinarity, we introduce an interaction-induced topological pump for ultracold atomic mixtures, where solitons of impurity atoms experience a quantized drift resulting from genuine interaction processes with their environment.

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