Entropic forces stabilize diverse emergent structures in colloidal membranes.

Soft Matter

Department of Physics & Astronomy, University of Pennsylvania, 203 South 33rd Street, Philadelphia, Pennsylvania 19104, USA.

Published: January 2016

AI Article Synopsis

  • Non-adsorbing polymers can lead to the condensation and formation of complex structures from repulsive colloidal particles, like 2D colloidal membranes made from filamentous fd viruses and dextran.
  • These colloidal membranes display unique behaviors such as chiral twisting and shape transformations influenced by the properties of the virus rods and their arrangement.
  • An entropic theory is developed to explain these behaviors and structures quantitatively, highlighting entropy's role and suggesting similar principles may apply to molecular membranes, with potential applications in creating adjustable colloidal materials.

Article Abstract

The depletion interaction mediated by non-adsorbing polymers promotes condensation and assembly of repulsive colloidal particles into diverse higher-order structures and materials. One example, with particularly rich emergent behaviors, is the formation of two-dimensional colloidal membranes from a suspension of filamentous fd viruses, which act as rods with effective repulsive interactions, and dextran, which acts as a condensing, depletion-inducing agent. Colloidal membranes exhibit chiral twist even when the constituent virus mixture lacks macroscopic chirality, change from a circular shape to a striking starfish shape upon changing the chirality of constituent rods, and partially coalesce via domain walls through which the viruses twist by 180°. We formulate an entropically-motivated theory that can quantitatively explain these experimental structures and measurements, both previously published and newly performed, over a wide range of experimental conditions. Our results elucidate how entropy alone, manifested through the viruses as Frank elastic energy and through the depletants as an effective surface tension, drives the formation and behavior of these diverse structures. Our generalizable principles propose the existence of analogous effects in molecular membranes and can be exploited in the design of reconfigurable colloidal structures.

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Source
http://dx.doi.org/10.1039/c5sm02038gDOI Listing

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