Observation of Fermi acceleration with cold atoms

Fuente: arXiv
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Bibliographic Details
Main Authors: Barontini, G., Naniyil, V., Stinton, J. P., Reid, D., Gunn, J. M. F., Price, H. M., Deb, A. B., Caprioli, D., Guarrera, V.
Format: Preprint
Published: 2025
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author Barontini, G.
Naniyil, V.
Stinton, J. P.
Reid, D.
Gunn, J. M. F.
Price, H. M.
Deb, A. B.
Caprioli, D.
Guarrera, V.
author_facet Barontini, G.
Naniyil, V.
Stinton, J. P.
Reid, D.
Gunn, J. M. F.
Price, H. M.
Deb, A. B.
Caprioli, D.
Guarrera, V.
contents Cosmic rays are deemed to be generated by a process known as ``Fermi acceleration", in which charged particles scatter against magnetic fluctuations in astrophysical plasmas. The process itself is however universal, has both classical and quantum formulations, and is at the basis of dynamical systems with interesting mathematical properties, such as the celebrated Fermi-Ulam model. Despite its effectiveness in accelerating particles, Fermi acceleration has so far eluded unambiguous verifications in laboratory settings. Here, we realize the first fully controllable Fermi accelerator by colliding ultracold atoms against engineered movable potential barriers. We demonstrate that our Fermi accelerator, which is only 100 um in size, can produce ultracold atomic jets with velocities above half a meter per second. Adding dissipation, we also experimentally test Bell's general argument for the ensuing energy spectra, which is at the basis of any model of cosmic ray acceleration. On the one hand, our work effectively opens the window to the study of high energy astrophysics with cold atoms, offering new capabilities for the understanding of phenomena such as diffusive acceleration at collisionless shocks. On the other, the performance of our Fermi accelerator is competitive with those of best-in-class accelerating methods used in quantum technology and quantum colliders, but with substantially simpler implementation and virtually no upper limit.
format Preprint
id arxiv_https___arxiv_org_abs_2503_09553
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Observation of Fermi acceleration with cold atoms
Barontini, G.
Naniyil, V.
Stinton, J. P.
Reid, D.
Gunn, J. M. F.
Price, H. M.
Deb, A. B.
Caprioli, D.
Guarrera, V.
Quantum Gases
High Energy Astrophysical Phenomena
Space Physics
Cosmic rays are deemed to be generated by a process known as ``Fermi acceleration", in which charged particles scatter against magnetic fluctuations in astrophysical plasmas. The process itself is however universal, has both classical and quantum formulations, and is at the basis of dynamical systems with interesting mathematical properties, such as the celebrated Fermi-Ulam model. Despite its effectiveness in accelerating particles, Fermi acceleration has so far eluded unambiguous verifications in laboratory settings. Here, we realize the first fully controllable Fermi accelerator by colliding ultracold atoms against engineered movable potential barriers. We demonstrate that our Fermi accelerator, which is only 100 um in size, can produce ultracold atomic jets with velocities above half a meter per second. Adding dissipation, we also experimentally test Bell's general argument for the ensuing energy spectra, which is at the basis of any model of cosmic ray acceleration. On the one hand, our work effectively opens the window to the study of high energy astrophysics with cold atoms, offering new capabilities for the understanding of phenomena such as diffusive acceleration at collisionless shocks. On the other, the performance of our Fermi accelerator is competitive with those of best-in-class accelerating methods used in quantum technology and quantum colliders, but with substantially simpler implementation and virtually no upper limit.
title Observation of Fermi acceleration with cold atoms
topic Quantum Gases
High Energy Astrophysical Phenomena
Space Physics
url https://arxiv.org/abs/2503.09553