First observation of turbulence-like state in dense algal suspensions

Fuente: arXiv
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Main Authors: Baruah, Prince Vibek, Padhan, Nadia Bihari, Maji, Biswajit, Pandit, Rahul, Sharma, Prerna
Format: Preprint
Published: 2025
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author Baruah, Prince Vibek
Padhan, Nadia Bihari
Maji, Biswajit
Pandit, Rahul
Sharma, Prerna
author_facet Baruah, Prince Vibek
Padhan, Nadia Bihari
Maji, Biswajit
Pandit, Rahul
Sharma, Prerna
contents Active turbulence arises typically in systems ranging from microorganisms and biopolymers to synthetic colloids, where chaotic flows are closely associated with motile topological defects in collectively swarming suspensions. Here, we report the first experimental observation of turbulence-like dynamics in a fundamentally different class of systems: dense monolayers of motile unicellular alga Chlamydomonas reinhardtii that exhibit neither orientational order nor topological defects. Nevertheless, the system displays rich spatiotemporal flow patterns with pronounced small-scale intermittency. We uncover strongly non-Gaussian velocity distribution, a feature distinct from both bacterial and classical fluid turbulence. Furthermore, we observe power-law regimes in the kinetic energy spectra, characterized by unique scaling exponents. Not only do our results provide compelling evidence for active spatiotemporal chaos in systems devoid of nematic or polar structures, but they also challenge current theoretical models. Our work opens new avenues for understanding emergent dynamics in active-matter systems and suggests intriguing biological implications, including enhanced mixing and transport in dense cell suspensions.
format Preprint
id arxiv_https___arxiv_org_abs_2503_03834
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle First observation of turbulence-like state in dense algal suspensions
Baruah, Prince Vibek
Padhan, Nadia Bihari
Maji, Biswajit
Pandit, Rahul
Sharma, Prerna
Soft Condensed Matter
Statistical Mechanics
Chaotic Dynamics
Active turbulence arises typically in systems ranging from microorganisms and biopolymers to synthetic colloids, where chaotic flows are closely associated with motile topological defects in collectively swarming suspensions. Here, we report the first experimental observation of turbulence-like dynamics in a fundamentally different class of systems: dense monolayers of motile unicellular alga Chlamydomonas reinhardtii that exhibit neither orientational order nor topological defects. Nevertheless, the system displays rich spatiotemporal flow patterns with pronounced small-scale intermittency. We uncover strongly non-Gaussian velocity distribution, a feature distinct from both bacterial and classical fluid turbulence. Furthermore, we observe power-law regimes in the kinetic energy spectra, characterized by unique scaling exponents. Not only do our results provide compelling evidence for active spatiotemporal chaos in systems devoid of nematic or polar structures, but they also challenge current theoretical models. Our work opens new avenues for understanding emergent dynamics in active-matter systems and suggests intriguing biological implications, including enhanced mixing and transport in dense cell suspensions.
title First observation of turbulence-like state in dense algal suspensions
topic Soft Condensed Matter
Statistical Mechanics
Chaotic Dynamics
url https://arxiv.org/abs/2503.03834