Entropy-driven formation of large icosahedral colloidal clusters by spherical confinement

Publication date

2015-01

Authors

de Nijs, B.ISNI 0000000419455582
Dussi, S.ISNI 0000000436401359
Smallenburg, FrankISNI 0000000395977772
Meeldijk, Johannes D.ISNI 0000000419468594
Groenendijk, Dirk J.
Filion, LauraISNI 0000000387851600
Imhof, ArnoutISNI 0000000369252655
van Blaaderen, AlfonsISNI 0000000388251965
Dijkstra, MarjoleinISNI 0000000358257928

Editors

Advisors

Supervisors

Document Type

Article
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taverne

Abstract

Icosahedral symmetry, which is not compatible with truly long-range order, canbefoundinmany systems, such as liquids, glasses, atomic clusters, quasicrystals and virus-capsids(1-12). To obtain arrangements with a high degree of icosahedral order from tens of particles or more, interparticle attractive interactions are considered to be essential(1,3,6-12). Here, we report that entropy and spherical confinement suffice for the formation of icosahedral clusters consisting of up to 100,000 particles. Specifically, by using real-space measurements on nanometre- and micrometre-sized colloids, as well as computer simulations, we show that tens of thousands of hard spheres compressed under spherical confinement spontaneously crystallize into icosahedral clusters that are entropically favoured over the bulk face-centred cubic crystal structure(13,14). Our findings provide insights into the interplay between confinement and crystallization and into how these are connected to the formation of icosahedral structures.

Keywords

HARD-SPHERES, CRYSTAL NUCLEATION, PHASE-BEHAVIOR, PACKING, NANOCRYSTALS, SUSPENSIONS, EVOLUTION, SYMMETRY, GLASSES, LIQUIDS, Taverne

Citation

de Nijs, B, Dussi, S, Smallenburg, F, Meeldijk, J D, Groenendijk, D J, Filion, L, Imhof, A, van Blaaderen, A & Dijkstra, M 2015, 'Entropy-driven formation of large icosahedral colloidal clusters by spherical confinement', Nature Materials, vol. 14, no. 1, pp. 56-60. https://doi.org/10.1038/NMAT4072