4.6 Article

Chemical potential in active systems: predicting phase equilibrium from bulk equations of state?

Journal

NEW JOURNAL OF PHYSICS
Volume 20, Issue -, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/1367-2630/aa9b4d

Keywords

colloids; phase separation; statistical physics; chemical potential; active systems

Funding

  1. Industrial Partnership Programme 'Computational Sciences for Energy Research' of the Foundation for Fundamental Research on Matter (FOM) [14CSER020]
  2. Shell Global Solutions International B.V
  3. Dutch Ministry of Education, Culture and Science (OCW)
  4. NWO-VICI

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We derive a microscopic expression for a quantity mu that plays the role of chemical potential of active Brownian particles (ABPs) in a steady state in the absence of vortices. Weshow that mu consists of (i) an intrinsic chemical potential similar to passive systems, which depends on density and self-propulsion speed, but not on the external potential, (ii) the external potential, and (iii) a newly derived one-body swim potential due to the activity of the particles. Our simulations on ABPs show good agreement with our Fokker-Planck calculations, and confirm that mu(z) is spatially constant for several inhomogeneous active fluids in their steady states in a planar geometry. Finally, we show that phase coexistence of ABPs with a planar interface satisfies not only mechanical but also diffusive equilibrium. The coexistence can be well-described by equating the bulk chemical potential and bulk pressure obtained from bulk simulations for systems with low activity but requires explicit evaluation of the interfacial contributions at high activity.

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