Issue 18, 2018

Long-range single domain array of a 5 nm pattern of supramolecules via solvent annealing in a double-sandwich cell

Abstract

In nanotechnology and microelectronics research, the generation of an ultradense, single-grain nanostructure with a long-range lateral order is challenging. In this paper, we report upon a new solvent-annealing method using a double-sandwich confinement to promote the formation of a large-area, single-domain array (>0.3 × 0.3 mm2) of supramolecular cylinders with a small feature size (4.7 nm). The in situ GISAXS experiment result shows the ordering process during solvent evaporation. The diffusion of the solvent molecules led to the disassembly of the supramolecules confined between the top and bottom surfaces and their subsequent mobilization, thereby producing a highly ordered hexagonal array of supramolecular materials under the double-sandwich confinement upon solvent evaporation. In addition, two key factors were found to be crucial in this process for generating highly-ordered supramolecular building blocks: (i) the presence of a top coat during solvent evaporation to provide a geometric confinement template, and (ii) the control of the solvent evaporation rate during the solvent evaporation step to provide the dendrimer sufficient time to self-assemble into the highly ordered state over a large area. Our developed approach, which can be extended to be used for a large family of supramolecules, is of critical importance in providing a new bottom-up lithographic method based on supramolecular self-assembly.

Graphical abstract: Long-range single domain array of a 5 nm pattern of supramolecules via solvent annealing in a double-sandwich cell

Supplementary files

Article information

Article type
Paper
Submitted
13 Feb 2018
Accepted
04 Apr 2018
First published
25 Apr 2018

Nanoscale, 2018,10, 8459-8470

Long-range single domain array of a 5 nm pattern of supramolecules via solvent annealing in a double-sandwich cell

K. Kwon, K. Park and H. Jung, Nanoscale, 2018, 10, 8459 DOI: 10.1039/C8NR01291A

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