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Depletion-Induced Self-Assembly of Colloidal Particles on a Solid Substrate

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Journal Langmuir
Specialty Chemistry
Date 2024 Apr 23
PMID 38651184
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Abstract

We investigate the depletion contributions to the self-assembly of microcolloids on solid substrates. The assembly is driven by the exclusion of nanoparticles and nonadsorbing polymers from the depletion zone between the microcolloids in the liquid and the underlying substrate. The model system consists of 1 μm polystyrene particles that we deposit on a flat glass slab in an electrolyte solution. Using polystyrene nanoparticles and poly(acrylic acid) polymers as depleting agents, we demonstrate in our experiments that nanoparticle concentrations of 0.5% (w/v) support well-ordered packing of microcolloids on glass, while the presence of polymers leads to irregular aggregate deposition structures. A mixture of nanoparticles and polymers enhances the formation of colloidal aggregate and particulate surface coverage compared to using the polymers alone as a depletion agent. Moreover, tuning the polymer ionization state from pH 4 to 9 modifies the polymer conformational state and radius of gyration, which in turn alters the microcolloid deposition from compact multilayers to flocculated structures. Our study provides entropic strategies for manipulating particulate assembly on substrates from dispersed to continuous coatings.

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Bredol M, Radev I, Primavera G, Lange T, Caidi A, Peinecke V Chemphyschem. 2024; 26(4):e202400767.

PMID: 39503337 PMC: 11832063. DOI: 10.1002/cphc.202400767.

References
1.
Zigelman A, Manor O . The deposition of colloidal particles from a sessile drop of a volatile suspension subject to particle adsorption and coagulation. J Colloid Interface Sci. 2017; 509:195-208. DOI: 10.1016/j.jcis.2017.08.088. View

2.
Bhardwaj R, Fang X, Somasundaran P, Attinger D . Self-assembly of colloidal particles from evaporating droplets: role of DLVO interactions and proposition of a phase diagram. Langmuir. 2010; 26(11):7833-42. DOI: 10.1021/la9047227. View

3.
Karas A, Glaser J, Glotzer S . Using depletion to control colloidal crystal assemblies of hard cuboctahedra. Soft Matter. 2016; 12(23):5199-204. DOI: 10.1039/c6sm00620e. View

4.
Liu B, Hasrat Z, Poolman B, Boersma A . Decreased Effective Macromolecular Crowding in Escherichia coli Adapted to Hyperosmotic Stress. J Bacteriol. 2019; 201(10). PMC: 6482933. DOI: 10.1128/JB.00708-18. View

5.
Jin F, Gong X, Ye J, Ngai T . Direct measurement of the nanobubble-induced weak depletion attraction between a spherical particle and a flat surface in an aqueous solution. Soft Matter. 2020; 4(5):968-971. DOI: 10.1039/b802326c. View