An anisotropic colloidal shape in combination with an externally tunable interaction potential results in a plethora of self-assembled structures with potential applications toward the fabrication of smart materials. Here we present our investigation on the influence of an external magnetic field on the self-assembly of hematite-silica core-shell prolate colloids for two aspect ratios ρ = 2.9 and 3.69. Our study shows a rather counterintuitive but interesting phenomenon, where prolate colloids self-assemble into oblate liquid crystalline (LC) phases. With increasing concentration, particles with smaller ρ reveal a sequence of LC phases involving para-nematic, nematic, smectic, and oriented glass phases. The occurrence of a smectic phase for colloidal ellipsoids has been neither predicted nor reported before. Quantitative shape analysis of the particles together with extensive computer simulations indicate that in addition to ρ, a subtle deviation from the ideal ellipsoidal shape dictates the formation of this unusual sequence of field-induced structures. Particles with ρ = 2.9 exhibit a hybrid shape containing features from both spherocylinders and ellipsoids, which make their self-assembly behavior richer than that observed for either of the “pure” shapes. The shape of the particles with higher ρ matches closely with the ideal ellipsoids, as a result their phase behavior follows the one expected for a “pure” ellipsoidal shape. Using anisotropic building blocks and external fields, our study demonstrates the ramifications of the subtle changes in the particle shape on the field-directed self-assembled structures with externally tunable properties.

Shape Matters in Magnetic-Field-Assisted Assembly of Prolate Colloids / Pal, A.; De Filippo, C. A.; Ito, T.; Kamal, M. A.; Petukhov, A. V.; De Michele, C.; Schurtenberger, P.. - In: ACS NANO. - ISSN 1936-0851. - 16:2(2022), pp. 2558-2568. [10.1021/acsnano.1c09208]

Shape Matters in Magnetic-Field-Assisted Assembly of Prolate Colloids

De Filippo C. A.
Secondo
;
De Michele C.
Penultimo
;
2022

Abstract

An anisotropic colloidal shape in combination with an externally tunable interaction potential results in a plethora of self-assembled structures with potential applications toward the fabrication of smart materials. Here we present our investigation on the influence of an external magnetic field on the self-assembly of hematite-silica core-shell prolate colloids for two aspect ratios ρ = 2.9 and 3.69. Our study shows a rather counterintuitive but interesting phenomenon, where prolate colloids self-assemble into oblate liquid crystalline (LC) phases. With increasing concentration, particles with smaller ρ reveal a sequence of LC phases involving para-nematic, nematic, smectic, and oriented glass phases. The occurrence of a smectic phase for colloidal ellipsoids has been neither predicted nor reported before. Quantitative shape analysis of the particles together with extensive computer simulations indicate that in addition to ρ, a subtle deviation from the ideal ellipsoidal shape dictates the formation of this unusual sequence of field-induced structures. Particles with ρ = 2.9 exhibit a hybrid shape containing features from both spherocylinders and ellipsoids, which make their self-assembly behavior richer than that observed for either of the “pure” shapes. The shape of the particles with higher ρ matches closely with the ideal ellipsoids, as a result their phase behavior follows the one expected for a “pure” ellipsoidal shape. Using anisotropic building blocks and external fields, our study demonstrates the ramifications of the subtle changes in the particle shape on the field-directed self-assembled structures with externally tunable properties.
2022
directed self-assembly; liquid crystals; magnetic anisotropic colloids; Monte Carlo (MC) simulation; particle shape-analysis; small-angle X-ray scattering (SAXS)
01 Pubblicazione su rivista::01a Articolo in rivista
Shape Matters in Magnetic-Field-Assisted Assembly of Prolate Colloids / Pal, A.; De Filippo, C. A.; Ito, T.; Kamal, M. A.; Petukhov, A. V.; De Michele, C.; Schurtenberger, P.. - In: ACS NANO. - ISSN 1936-0851. - 16:2(2022), pp. 2558-2568. [10.1021/acsnano.1c09208]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1619145
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