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arxiv: 1906.06083 · v1 · submitted 2019-06-14 · ❄️ cond-mat.quant-gas · nlin.PS· physics.atom-ph

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Splitting and recombination of bright-solitary-matter waves

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classification ❄️ cond-mat.quant-gas nlin.PSphysics.atom-ph
keywords recombinationbright-solitary-matterinterference-mediatedwavesbarrierdispersioninterferometerinterferometers
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Solitons are long-lived wavepackets that propagate without dispersion and exist in a wide range of one-dimensional (1D) nonlinear systems. A Bose-Einstein condensate trapped in a quasi-1D waveguide can support bright-solitary-matter waves (3D analogues of solitons) when interatomic interactions are sufficiently attractive that they cancel dispersion. Solitary-matter waves are excellent candidates for a new generation of highly sensitive interferometers, as their non-dispersive nature allows them to acquire phase shifts for longer times than conventional matter-waves interferometers. However, such an interferometer is yet to be realised experimentally. In this work, we demonstrate the splitting and recombination of a bright-solitary-matter wave on a narrow repulsive barrier, which brings together the fundamental components of an interferometer. We show that both interference-mediated recombination and classical velocity filtering effects are important, but for a sufficiently narrow barrier interference-mediated recombination can dominate. We reveal the extreme sensitivity of interference-mediated recombination to the experimental parameters, highlighting the potential of soliton interferometry.

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