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Controlled formation and reflection of a bright solitary matter-wave

A. L. MarchantJoint Quantum Centre, Durham-Newcastle, Department of Physics, Durham University, Durham DH1 3LE, UKT. P. BillamDepartment of Physics, Jack Dodd Centre for Quantum Technology, University of Otago, Dunedin, 9016, New ZealandT. P. WilesDepartment of Physics, Joint Quantum Centre (JQC), Durham—Newcastle, Durham University, Durham, DH1 3LE, UKM. M. H. YuDepartment of Physics, Joint Quantum Centre (JQC), Durham—Newcastle, Durham University, Durham, DH1 3LE, UKS. A. GardinerDepartment of Physics, Joint Quantum Centre (JQC), Durham—Newcastle, Durham University, Durham, DH1 3LE, UKSimon L. CornishDepartment of Physics, Joint Quantum Centre (JQC), Durham—Newcastle, Durham University, Durham, DH1 3LE, UK
2013en
ABI

Annotatsiya

Bright solitons are non-dispersive wave solutions, arising in a diverse range of nonlinear, one-dimensional systems, including atomic Bose-Einstein condensates with attractive interactions. In reality, cold-atom experiments can only approach the idealized one-dimensional limit necessary for the realization of true solitons. Nevertheless, it remains possible to create bright solitary waves, the three-dimensional analogue of solitons, which maintain many of the key properties of their one-dimensional counterparts. Such solitary waves offer many potential applications and provide a rich testing ground for theoretical treatments of many-body quantum systems. Here we report the controlled formation of a bright solitary matter-wave from a Bose-Einstein condensate of (85)Rb, which is observed to propagate over a distance of ∼1.1 mm in 150 ms with no observable dispersion. We demonstrate the reflection of a solitary wave from a repulsive Gaussian barrier and contrast this to the case of a repulsive condensate, in both cases finding excellent agreement with theoretical simulations using the three-dimensional Gross-Pitaevskii equation.

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