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  • Letter
  • Open Access

Sedimentation and levitation of catalytic active colloids

V. Carrasco-Fadanelli* and I. Buttinoni

  • Institute of Experimental Colloidal Physics, Department of Physics, Heinrich-Heine-Universität Düsseldorf, 40225 Düsseldorf, Germany

  • *carrasv@hhu.de

Phys. Rev. Research 5, L012018 – Published 13 February, 2023

DOI: https://doi.org/10.1103/PhysRevResearch.5.L012018

Abstract

Gravitational effects in colloidal suspensions can be easily turned off by matching the density of the solid microparticles with the one of the surrounding fluid. By studying the motion of catalytic microswimmers with tunable buoyant weight, we show that this strategy cannot be adopted for active colloids with asymmetric mass distribution. If the average buoyant weight decreases, pronounced accumulation at the top wall of a sample cell is observed due to a counteralignment of the swimming velocity with the gravitational field. Even when the particles reach a flat wall, gravitational torques still determine the properties of the quasi-two-dimensional active motion. Our results highlight the subtle role of gravity in active systems.

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References (36)

  1. C. Bechinger, R. DiLeonardo, H. Löwen, C. Reichhardt, G. Volpe, and G. Volpe, Active particles in complex and crowded environments, Rev. Mod. Phys. 88, 045006 (2016).
  2. S. Ramaswamy, The mechanics and statistics of active matter, Annu. Rev. Condens. Matter Phys. 1, 323 (2010).
  3. S. J. Ebbens and J. R. Howse, In pursuit of propulsion at the nanoscale, Soft Matter 6, 726 (2010).
  4. M. You, C. Chen, L. Xu, F. Mou, and J. Guan, Intelligent micro/nanomotors with taxis, Acc. Chem. Res. 51, 3006 (2018).
  5. J. Katuri, X. Ma, M. M. Stanton, and S. Sánchez, Designing micro-and nanoswimmers for specific applications, Acc. Chem. Res. 50, 2 (2017).
  6. D. Xu, Y. Wang, C. Liang, Y. You, S. Sanchez, and X. Ma, Self-propelled micro/nanomotors for on-demand biomedical cargo transportation, Small 16, 1902464 (2020).
  7. J. Zhang, E. Luijten, B. A. Grzybowski, and S. Granick, Active colloids with collective mobility status and research opportunities, Chem. Soc. Rev. 46, 5551 (2017).
  8. A. Morin, J.-B. Caussin, C. Eloy, and D. Bartolo, Collective motion with anticipation: Flocking, spinning, and swarming, Phys. Rev. E 91, 012134 (2015).
  9. J. Palacci, S. Sacanna, A. P. Steinberg, D. J. Pine, and P. M. Chaikin, Living crystals of light-activated colloidal surfers, Science 339, 936 (2013).
  10. I. Buttinoni, J. Bialké, F. Kümmel, H. Löwen, C. Bechinger, and T. Speck, Dynamical Clustering and Phase Separation in Suspensions of Self-Propelled Colloidal Particles, Phys. Rev. Lett. 110, 238301 (2013).
  11. J. L. Anderson, Colloid transport by interfacial forces, Annu. Rev. Fluid Mech. 21, 61 (1989).
  12. A. Aubret, S. Ramananarivo, and J. Palacci, Eppur si muove, and yet it moves: Patchy (phoretic) swimmers, Curr. Opin. Colloid Interface Sci. 30, 81 (2017).
  13. J. R. Howse, R. A. L. Jones, A. J. Ryan, T. Gough, R. Vafabakhsh, and R. Golestanian, Self-Motile Colloidal Particles: From Directed Propulsion to Random Walk, Phys. Rev. Lett. 99, 048102 (2007).
  14. K. Dietrich, D. Renggli, M. Zanini, G. Volpe, I. Buttinoni, and L. Isa, Two-dimensional nature of the active Brownian motion of catalytic microswimmers at solid and liquid interfaces, New J. Phys. 19, 065008 (2017).
  15. S. Ketzetzi, J. de Graaf, R. P. Doherty, and D. J. Kraft, Slip Length Dependent Propulsion Speed of Catalytic Colloidal Swimmers near Walls, Phys. Rev. Lett. 124, 048002 (2020).
  16. A. Brown and W. Poon, Ionic effects in self-propelled pt-coated Janus swimmers, Soft Matter 10, 4016 (2014).
  17. J. Palacci, C. Cottin-Bizonne, C. Ybert, and L. Bocquet, Sedimentation and Effective Temperature of Active Colloidal Suspensions, Phys. Rev. Lett. 105, 088304 (2010).
  18. R. Keßler, D. Bräuer, C. Dreißigacker, J. Drescher, C. Lozano, C. Bechinger, P. Born, and T. Voigtmann, Direct-imaging of light-driven colloidal Janus particles in weightlessness, Rev. Sci. Instrum. 91, 013902 (2020).
  19. N. Sakaï and C. P. Royall, Active dipolar colloids in three dimensions: Strings, sheets, labyrinthine textures and crystals, arXiv:2010.03925.
  20. A. I. Campbell and S. J. Ebbens, Gravitaxis in spherical Janus swimming devices, Langmuir 29, 14066 (2013).
  21. A. I. Campbell, R. Wittkowski, B. ten Hagen, H. Löwen, and S. J. Ebbens, Helical paths, gravitaxis, and separation phenomena for mass-anisotropic self-propelling colloids: Experiment versus theory, J. Chem. Phys. 147, 084905 (2017).
  22. B. Ten Hagen, F. Kümmel, R. Wittkowski, D. Takagi, H. Löwen, and C. Bechinger, Gravitaxis of asymmetric self-propelled colloidal particles, Nat. Commun. 5, 4829 (2014).
  23. M. Enculescu and H. Stark, Active Colloidal Suspensions Exhibit Polar Order under Gravity, Phys. Rev. Lett. 107, 058301 (2011).
  24. H. Stark, Swimming in external fields, Eur. Phys. J.: Spec. Top. 225, 2369 (2016).
  25. F. Ginot, A. Solon, Y. Kafri, C. Ybert, J. Tailleur, and C. Cottin-Bizonne, Sedimentation of self-propelled Janus colloids: Polarization and pressure, New J. Phys. 20, 115001 (2018).
  26. S. Das, A. Garg, A. I. Campbell, J. Howse, A. Sen, D. Velegol, R. Golestanian, and S. J. Ebbens, Boundaries can steer active Janus spheres, Nat. Commun. 6, 8999 (2015).
  27. S. Ketzetzi, J. de Graaf, and D. J. Kraft, Diffusion-Based Height Analysis Reveals Robust Microswimmer-Wall Separation, Phys. Rev. Lett. 125, 238001 (2020).
  28. S. Das, Z. Jalilvand, M. N. Popescu, W. E. Uspal, S. Dietrich, and I. Kretzschmar, Floor-or ceiling-sliding for chemically active, gyrotactic, sedimenting Janus particles, Langmuir 36, 7133 (2020).
  29. W. Uspal, M. N. Popescu, S. Dietrich, and M. Tasinkevych, Self-propulsion of a catalytically active particle near a planar wall: From reflection to sliding and hovering, Soft Matter 11, 434 (2015).
  30. See Supplemental Material at http://link.aps.org/supplemental/10.1103/PhysRevResearch.5.L012018 for details in methods and simulation.
  31. P. Giguère and O. Maass, The heterogeneous catalytic decomposition of hydrogen peroxide in heavy water, Can. J. Res. 18b, 84 (1940).
  32. B. ten Hagen, S. van Teeffelen, and H. Löwen, Brownian motion of a self-propelled particle, J. Phys.: Condens. Matter 23, 194119 (2011).
  33. A. Callegari and G. Volpe, Numerical simulations of active Brownian particles, in Flowing Matter, edited by F. Toschi and M. Sega (Springer International Publishing, Cham, 2019), pp. 211–238.
  34. M. N. Popescu, W. E. Uspal, A. Dominguez, and S. Dietrich, Effective interactions between chemically active colloids and interfaces, Acc. Chem. Res. 51, 2991 (2018).
  35. D. B. Allan, T. Caswell, N. C. Keim, C. M. van der Wel, and R. W. Verweij, soft-matter/trackpy: Trackpy v0.5.0, Zenodo (2024), doi:10.5281/zenodo.4682814.
  36. P. Bayati, M. N. Popescu, W. E. Uspal, S. Dietrich, and A. Najafi, Dynamics near planar walls for various model self-phoretic particles, Soft Matter 15, 5644 (2019).

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