Guided colloidal crystallization

The expanse of single crystallinity in two-dimensional colloidal crystal is limited by the difficulty to control its nucleation, leading to multi-domain growth, empty bands and voids. Using a straight nucleation line, this thesis demonstrates techniques to engineer preferential nucleation and in-...

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Main Author: Ng, Eric Chin Hong
Other Authors: Gan Chee Lip
Format: Theses and Dissertations
Language:English
Published: 2018
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Online Access:http://hdl.handle.net/10356/75934
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-759342023-03-04T16:46:24Z Guided colloidal crystallization Ng, Eric Chin Hong Gan Chee Lip School of Materials Science & Engineering Singapore-MIT Alliance Programme DRNTU::Engineering::Materials The expanse of single crystallinity in two-dimensional colloidal crystal is limited by the difficulty to control its nucleation, leading to multi-domain growth, empty bands and voids. Using a straight nucleation line, this thesis demonstrates techniques to engineer preferential nucleation and in-plane growth of monolayer colloidal crystal in both convective-induced self-assembly and electric field assisted self-assembly. In convective driven self-assembly, a straight nucleation line is achieved by pinning the air-liquid-solid contact line along the edge of a straight surface relief. With evaporation, convective driven particle flux to the edge of surface relief enables the formation of a perfect nucleation seed, followed by subsequent in-plane growth to produce large area single domain of monolayer colloidal crystal. A model describing the criteria for successful meniscus pinning near the surface relief is proposed, with consideration of surface relief height. A similar surface relief with conductive coating is used in electric field assisted self-assembly, to attract particle accumulation and ordering by both Dielectrophoresis (DEP) and AC Electroosmosis (ACEO) forces, respectively. Near the surface relief of an electrode, preferential particle adsorption and nucleation of colloidal arrays are achieved, giving rise to in-plane growth of monolayer colloidal crystal. In addition, by analysing DEP and ACEO using finite-element method, DEP is found to be crucial in the nucleation of colloidal crystal near the surface relief, preceding the growth driven by ACEO forces. Lastly, both convective-induced selfassembly and electric field assisted self-assembly using straight surface reliefs are compared in terms of crystal quality, processing advantages and limitations. In conclusion, both approaches enable <11> (or <10>) crystal-packing directions aligned next to the straight surface relief, leading to the success of guided colloidal crystallization. Doctor of Philosophy (MSE) 2018-08-07T05:10:52Z 2018-08-07T05:10:52Z 2018 Thesis Ng, E. C. H. (2018). Guided colloidal crystallization. Doctoral thesis, Nanyang Technological University, Singapore. http://hdl.handle.net/10356/75934 10.32657/10356/75934 en 158 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Materials
spellingShingle DRNTU::Engineering::Materials
Ng, Eric Chin Hong
Guided colloidal crystallization
description The expanse of single crystallinity in two-dimensional colloidal crystal is limited by the difficulty to control its nucleation, leading to multi-domain growth, empty bands and voids. Using a straight nucleation line, this thesis demonstrates techniques to engineer preferential nucleation and in-plane growth of monolayer colloidal crystal in both convective-induced self-assembly and electric field assisted self-assembly. In convective driven self-assembly, a straight nucleation line is achieved by pinning the air-liquid-solid contact line along the edge of a straight surface relief. With evaporation, convective driven particle flux to the edge of surface relief enables the formation of a perfect nucleation seed, followed by subsequent in-plane growth to produce large area single domain of monolayer colloidal crystal. A model describing the criteria for successful meniscus pinning near the surface relief is proposed, with consideration of surface relief height. A similar surface relief with conductive coating is used in electric field assisted self-assembly, to attract particle accumulation and ordering by both Dielectrophoresis (DEP) and AC Electroosmosis (ACEO) forces, respectively. Near the surface relief of an electrode, preferential particle adsorption and nucleation of colloidal arrays are achieved, giving rise to in-plane growth of monolayer colloidal crystal. In addition, by analysing DEP and ACEO using finite-element method, DEP is found to be crucial in the nucleation of colloidal crystal near the surface relief, preceding the growth driven by ACEO forces. Lastly, both convective-induced selfassembly and electric field assisted self-assembly using straight surface reliefs are compared in terms of crystal quality, processing advantages and limitations. In conclusion, both approaches enable <11> (or <10>) crystal-packing directions aligned next to the straight surface relief, leading to the success of guided colloidal crystallization.
author2 Gan Chee Lip
author_facet Gan Chee Lip
Ng, Eric Chin Hong
format Theses and Dissertations
author Ng, Eric Chin Hong
author_sort Ng, Eric Chin Hong
title Guided colloidal crystallization
title_short Guided colloidal crystallization
title_full Guided colloidal crystallization
title_fullStr Guided colloidal crystallization
title_full_unstemmed Guided colloidal crystallization
title_sort guided colloidal crystallization
publishDate 2018
url http://hdl.handle.net/10356/75934
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