Literature DB >> 32140796

Activity-modulated phase transition in a two-dimensional mixture of active and passive colloids.

Mohammed Elismaili1, Samah Hamze1, Hong Xu1, David Gonzalez-Rodriguez2.   

Abstract

We study a two-dimensional binary mixture of active and passive colloids as an idealized model of an hybrid aggregate of living cells and inert particles. We perform molecular dynamics simulations of this system using two different thermostats, and we systematically investigate the effect of varying these two effective temperatures on the system behavior, as characterized by its density, structure and thermoelastic properties. Our results indicate that the presence of active colloids shifts the mixture towards the liquid state and renders it more deformable. Such system softening and melting effects due to the addition of active particles are larger than expected from a linear combination of temperatures of the active and passive components. This heightened effect becomes more pronounced as the effective temperature difference between the two components becomes larger. The binary mixture remains homogeneous for moderate colloidal activity, but segregation arises for large effective temperature difference. Our results provide insights to guide future experimental hybrid aggregate studies with promising biomedical applications.

Keywords:  Flowing Matter: Active Fluids

Year:  2020        PMID: 32140796     DOI: 10.1140/epje/i2020-11942-3

Source DB:  PubMed          Journal:  Eur Phys J E Soft Matter        ISSN: 1292-8941            Impact factor:   1.890


  24 in total

1.  Single cell motion in aggregates of embryonic cells.

Authors: 
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4.  Dissipative particle dynamics simulations for biological tissues: rheology and competition.

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7.  Binary Mixtures of Particles with Different Diffusivities Demix.

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