Multivalent Patchy Colloids for Quantitative 3D Self-Assembly Studies

Publication date

2020-03-10

Authors

Kamp, MarlousORCID 0000-0003-4915-1312ISNI 0000000449452585
de Nijs, B.ISNI 0000000419455582
van der Linden, M.N.ISNI 0000000419442378
De Feijter, Isja
Lefferts, Merel J.
Aloi, Antonio
Griffiths, Jack
Baumberg, Jeremy J.
Voets, Ilja K.
van Blaaderen, AlfonsISNI 0000000388251965

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Article
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Abstract

We report methods to synthesize sub-micron- and micron-sized patchy silica particles with fluorescently labeled hemispherical titania protrusions, as well as routes to efficiently characterize these particles and self-assemble these particles into non-close-packed structures. The synthesis methods expand upon earlier work in the literature, in which silica particles packed in a colloidal crystal were surface-patterned with a silane coupling agent. Here, hemispherical amorphous titania protrusions were successfully labeled with fluorescent dyes, allowing for imaging by confocal microscopy and super-resolution techniques. Confocal microscopy was exploited to experimentally determine the numbers of protrusions per particle over large numbers of particles for good statistical significance, and these distributions were compared to simulations predicting the number of patches as a function of core particle polydispersity and maximum separation between the particle surfaces. We self-assembled these patchy particles into open percolating gel networks by exploiting solvophobic attractions between the protrusions.

Keywords

General Materials Science, Condensed Matter Physics, Surfaces and Interfaces, Spectroscopy, Electrochemistry

Citation

Kamp, M, De Nijs, B, Van Der Linden, M N, De Feijter, I, Lefferts, M J, Aloi, A, Griffiths, J, Baumberg, J J, Voets, I K & Van Blaaderen, A 2020, 'Multivalent Patchy Colloids for Quantitative 3D Self-Assembly Studies', Langmuir, vol. 36, no. 9, pp. 2403-2418. https://doi.org/10.1021/acs.langmuir.9b03863