Shape-sensitive crystallization in colloidal superball fluids

Publication date

2015-04-28

Authors

Rossi, L.ISNI 0000000419438950
Soni, Vishal
Ashton, Douglas J.ISNI 0000000134305353
Pine, David J.
Philipse, A.P.ISNI 000000038745113X
Chaikin, Paul M.
Dijkstra, MarjoleinISNI 0000000358257928
Sacanna, Stefano
Irvine, William T M

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Abstract

Guiding the self-assembly of materials by controlling the shape of the individual particle constituents is a powerful approach to material design. We show that colloidal silica superballs crystallize into canted phases in the presence of depletants. Some of these phases are consistent with the so-called "Λ<inf>1</inf>" lattice that was recently predicted as the densest packing of superdisks. As the size of the depletant is reduced, however, we observe a transition to a square phase. The differences in these entropically stabilized phases result from an interplay between the size of the depletants and the fine structure of the superball shape. We find qualitative agreement of our experimental results both with a phase diagram computed on the basis of the volume accessible to the depletants and with simulations. By using a mixture of depletants, one of which is thermosensitive, we induce solid-to-solid phase transitions between square and canted structures. The use of depletant size to leverage fine features of the shape of particles in driving their self-assembly demonstrates a general and powerful mechanism for engineering novel materials.

Keywords

Dense packings, Depletion interactions, Monte Carlo simulations, Phase behavior, Superballs, General

Citation

Rossi, L, Soni, V, Ashton, D J, Pine, D J, Philipse, A P, Chaikin, P M, Dijkstra, M, Sacanna, S & Irvine, W T M 2015, 'Shape-sensitive crystallization in colloidal superball fluids', Proceedings of the National Academy of Sciences of the United States of America, vol. 112, no. 17, pp. 5286-5290. https://doi.org/10.1073/pnas.1415467112