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Trap-Quenched Matter-Wave Optics for Dual Species Lensing

Gabriel Müller, Timothé Estrampes, Claudia Puertas González, Jannik Ströhle, David B. Reinhardt, Dana Codruta Marinica, Ethan R. Elliott, Jason R. Williams, Nathan Lundblad, Eric Charron, Ernst M. Rasel, Matthias Meister, Wolfgang P. Schleich, Naceur Gaaloul, Nicholas P. Bigelow·June 12, 2026
Atomic Physicscond-mat.quant-gasQuantum Physics

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Abstract

Dual-species atom interferometry in space promises precise tests of the Universality of Free Fall (UFF), with a sensitivity that grows quadratically with the extended interrogation time accessible in weightlessness. These tests demand exquisite control over the expansion energies of both condensed sources as well as over their differential center-of-mass dynamics. We propose a trap-quenched collimation technique featuring in-trap excitations of collective modes compatible with state-of-the-art atom-chip setups. Using NASA's Cold Atom Laboratory aboard the International Space Station, we demonstrate it on a single-species $^{87}$Rb condensate. By controlling the center-of-mass release dynamics we observe free expansion times up to 700 ms and measure a two-dimensional expansion energy of $k_B \cdot 78\pm 9 \;\mathrm{pK}$ in the imaging plane. A detailed model of the magnetically-induced dynamics indicates that this corresponds to a two-dimensional expansion energy of about $k_B \cdot 15^{+12}_{-5}\; \mathrm{pK}$ along two of the condensate's eigenaxes. Finally, we theoretically study this trap-quenched collimation scheme for a $^{41}$K-$^{87}$Rb mixture, predicting a simultaneous collimation that meets the expansion energy requirements for a state-of-the-art UFF test at the $10^{-15}$ accuracy level.

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