| Literature DB >> 31188012 |
Leonel Barreda1, Zhengyuan Shen1,2,3, Qile P Chen1,2,3, Timothy P Lodge1,3, J Ilja Siepmann1,2,3, Marc A Hillmyer1.
Abstract
Efforts to create block-polymer-based templates with ultrasmall domain sizes has stimulated integrated experimental and theoretical work in an effort to design and prepare self-assembled systems that can achieve unprecedented domain sizes. We recently reported the utilization of molecular dynamics simulations with transferable force fields to identify amphiphilic oligomers capable of self-assembling into ordered layered and cylindrical morphologies with sub-3 nm domain sizes. Motivated by these predictions, we prepared a sugar-based amphiphile with a hydrocarbon tail that shows thermotropic self-assembly to give a lamellar mesophase with a 3.5 nm pitch and sub-2 nm nanodomains above the melting temperature and below the liquid-crystalline clearing temperature. Complementary atomistic simulations of the molecular assemblies gave morphologies and spacings that were in near-perfect agreement with the experimental results. The effective combination of molecular design, simulation, synthesis, and structural characterization demonstrates the power of this integrated approach for next-generation templating technologies.Entities:
Keywords: Thermotropic; glycolipid; lamellar morphology; liquid crystal
Year: 2019 PMID: 31188012 DOI: 10.1021/acs.nanolett.9b01248
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189