Continuous Bose-Einstein condensation
Chun-Chia Chen, Rodrigo Gonz\'alez Escudero, Ji\v{r}\'i Min\'a\v{r},, Benjamin Pasquiou, Shayne Bennetts, Florian Schreck

TL;DR
This paper reports the creation of a continuous Bose-Einstein condensate of strontium atoms, enabling indefinite coherent matter waves that could revolutionize quantum sensing and atom laser technology.
Contribution
It demonstrates the first continuous-wave BEC by maintaining a steady thermal bath and Bose-stimulated gain, surpassing previous sequential cooling limitations.
Findings
Achieved indefinite continuous Bose-Einstein condensation.
Enhanced phase-space density by 1000x over previous methods.
Enabled potential development of continuous atom lasers.
Abstract
Bose-Einstein condensates (BECs) are macroscopic coherent matter waves that have revolutionized quantum science and atomic physics. They are essential to quantum simulation and sensing, for example underlying atom interferometers in space and ambitious tests of Einstein's equivalence principle. The key to dramatically increasing the bandwidth and precision of such matter-wave sensors lies in sustaining a coherent matter wave indefinitely. Here we demonstrate continuous Bose-Einstein condensation by creating a continuous-wave (CW) condensate of strontium atoms that lasts indefinitely. The coherent matter wave is sustained by amplification through Bose-stimulated gain of atoms from a thermal bath. By steadily replenishing this bath while achieving 1000x higher phase-space densities than previous works, we maintain the conditions for condensation. This advance overcomes a fundamental…
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