Journal article : Letter
Bidirectional dynamic scaling in an isolated Bose gas far from equilibrium
- Abstract:
- Understanding and classifying non-equilibrium many-body phenomena, analogously to the classification of equilibrium states of matter into universality classes1,2, is an outstanding problem in physics. From stellar matter to financial markets, any many-body system can be out of equilibrium in a myriad of ways, and many are difficult to experiment on. It is therefore a major goal to establish universal principles that apply to different phenomena and physical systems. For equilibrium states, the universality seen in the self-similar spatial scaling of systems close to phase transitions lies at the heart of their classification. Recent theoretical work3,4,5,6,7,8,9,10,11,12,13,14 and experimental evidence15,16 suggest that isolated many-body systems far from equilibrium generically exhibit dynamic (spatiotemporal) self-similar scaling, akin to turbulent cascades17 and the Family–Vicsek scaling in classical surface growth18,19. Here we observe bidirectional dynamic scaling in an isolated quench-cooled atomic Bose gas; as the gas thermalizes and undergoes Bose–Einstein condensation, it shows self-similar net flows of particles towards the infrared (smaller momenta) and energy towards the ultraviolet (smaller length scales). For both infrared and ultraviolet dynamics we find that the scaling exponents are independent of the strength of the interparticle interactions that drive the thermalization.
- Publication status:
- Published
- Peer review status:
- Peer reviewed
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- Files:
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(Preview, Accepted manuscript, 3.2MB, Terms of use)
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- Publisher copy:
- 10.1038/s41567-020-01114-x
Authors
- Publisher:
- Springer Nature
- Journal:
- Nature Physics More from this journal
- Volume:
- 17
- Issue:
- 4
- Pages:
- 457–461
- Publication date:
- 2021-01-04
- Acceptance date:
- 2020-11-09
- DOI:
- EISSN:
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1745-2481
- ISSN:
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1745-2473
- Language:
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English
- Keywords:
- Subtype:
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Letter
- Pubs id:
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1109521
- Local pid:
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pubs:1109521
- Deposit date:
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2020-11-11
Terms of use
- Copyright holder:
- Glidden et al.
- Copyright date:
- 2021
- Rights statement:
- © The Author(s), under exclusive licence to Springer Nature Limited 2021.
- Notes:
- This is the accepted manuscript version of the article. The final version is available online from Springer Nature at: https://doi.org/10.1038/s41567-020-01114-x
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