Unidirectional flow from continuous broken symmetries

Locally broken symmetries are used across fields to transport matter, particles, and information in preferential directions. Beyond local mechanisms, spatially distributed nonlinearities in crystalline media have enabled nonreciprocal transport, a rectification mechanism that operates continuously across scales and frequencies. Here, we show that this concept applies beyond condensed matter, to fluid transport in living organisms and artificial systems. We take the example of the lymphatic vascular system, which transports interstitial fluid in mammals, and demonstrate that distributed leaflets act as continuous broken symmetries. We build an artificial model of a collecting lymphatic and investigate the naturally richer dynamics of unidirectional transport that arises from spatiotemporal excitations. We observe robust and scalable transport across a broad range of waveshapes and external pressure gradients. We show experimentally and theoretically that the contraction wavelength, directionality, and pulsatility control the flow rate. In particular, we counterintuitively find waveshapes that maximize transport when propagating against the direction of the flow. Overall, our findings advance the understanding of unidirectional fluid transport in living systems and beyond, and reveal how coupling nonlinearities with spatiotemporal excitations can tune such transport across fields.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-09-18
DOI
https://doi.org/10.1073/pnas.2611776123
Primary Topic
Micro and Nano Robotics
Type
article
Field-Weighted Citation Impact
0.00

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article

Unidirectional flow from continuous broken symmetries

J. Parmentier, Martin Brandenbourger, Eleni Katifori, Aaron Winn
Proceedings of the National Academy of Sciences
Micro and Nano Robotics
article

Unidirectional flow from continuous broken symmetries

J. Parmentier, Martin Brandenbourger, Eleni Katifori, Aaron Winn
article en

Abstract

Locally broken symmetries are used across fields to transport matter, particles, and information in preferential directions. Beyond local mechanisms, spatially distributed nonlinearities in crystalline media have enabled nonreciprocal transport, a rectification mechanism that operates continuously across scales and frequencies. Here, we show that this concept applies beyond condensed matter, to fluid transport in living organisms and artificial systems. We take the example of the lymphatic vascular system, which transports interstitial fluid in mammals, and demonstrate that distributed leaflets act as continuous broken symmetries. We build an artificial model of a collecting lymphatic and investigate the naturally richer dynamics of unidirectional transport that arises from spatiotemporal excitations. We observe robust and scalable transport across a broad range of waveshapes and external pressure gradients. We show experimentally and theoretically that the contraction wavelength, directionality, and pulsatility control the flow rate. In particular, we counterintuitively find waveshapes that maximize transport when propagating against the direction of the flow. Overall, our findings advance the understanding of unidirectional fluid transport in living systems and beyond, and reveal how coupling nonlinearities with spatiotemporal excitations can tune such transport across fields.

Proceedings of the National Academy of SciencesVol. 123(38)
Institut de Recherche sur les Phénomènes Hors Équilibre (FR), Flatiron Health (United States) (US), Flatiron Institute, University of Pennsylvania (US)
European Research Council, Army Research Office
Life in Land
Openalex Percentile: Top 74%
Micro and Nano Robotics
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Unidirectional flow from continuous broken symmetries — J. Parmentier, Martin Brandenbourger, et al. · Proceedings of the National Academy of Sciences (2026) | TGRS Research Map | TGRS