Activity waves and freestanding vortices in populations of subcritical Quincke rollers
Author(s) -
Zeng Tao Liu,
Yan Shi,
Yongfeng Zhao,
Hugues Chaté,
Xia-qing Shi,
Tian Hui Zhang
Publication year - 2021
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.2104724118
Subject(s) - vortex , active matter , physics , classical mechanics , mechanics , population , field (mathematics) , granular matter , particle (ecology) , electric field , geology , granular material , quantum mechanics , demography , mathematics , sociology , pure mathematics , biology , microbiology and biotechnology , oceanography
Virtually all of the many active matter systems studied so far are made of units (biofilaments, cells, colloidal particles, robots, animals, etc.) that move even when they are alone or isolated. Their collective properties continue to fascinate, and we now understand better how they are unique to the bulk transduction of energy into work. Here we demonstrate that systems in which isolated but potentially active particles do not move can exhibit specific and remarkable collective properties. Combining experiments, theory, and numerical simulations, we show that such subcritical active matter can be realized with Quincke rollers, that is, dielectric colloidal particles immersed in a conducting fluid subjected to a vertical DC electric field. Working below the threshold field value marking the onset of motion for a single colloid, we find fast activity waves, reminiscent of excitable systems, and stable, arbitrarily large self-standing vortices made of thousands of particles moving at the same speed. Our theoretical model accounts for these phenomena and shows how they can arise in the absence of confining boundaries and individual chirality. We argue that our findings imply that a faithful description of the collective properties of Quincke rollers need to consider the fluid surrounding particles.
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