Literature DB >> 23852805

On the "tertiary structure" of poly-carbenes; self-assembly of sp3-carbon-based polymers into liquid-crystalline aggregates.

Nicole M G Franssen1, Bernd Ensing, Maruti Hegde, Theo J Dingemans, Ben Norder, Stephen J Picken, Gert O R Alberda van Ekenstein, Ernst R H van Eck, Johannes A A W Elemans, Mark Vis, Joost N H Reek, Bas de Bruin.   

Abstract

The self-assembly of poly(ethylidene acetate) (st-PEA) into van der Waals-stabilized liquid-crystalline (LC) aggregates is reported. The LC behavior of these materials is unexpected, and unusual for flexible sp(3)-carbon backbone polymers. Although the dense packing of polar ester functionalities along the carbon backbone of st-PEA could perhaps be expected to lead directly to rigid-rod behavior, molecular modeling reveals that individual st-PEA chains are actually highly flexible and should not reveal rigid-rod induced LC behavior. Nonetheless, st-PEA clearly reveals LC behavior, both in solution and in the melt over a broad elevated temperature range. A combined set of experimental measurements, supported by MM/MD studies, suggests that the observed LC behavior is due to self-aggregation of st-PEA into higher-order aggregates. According to MM/MD modeling st-PEA single helices adopt a flexible helical structure with a preferred trans-gauche syn-syn-anti-anti orientation. Unexpectedly, similar modeling experiments suggest that three of these helices can self-assemble into triple-helical aggregates. Higher-order assemblies were not observed in the MM/MD simulations, suggesting that the triple helix is the most stable aggregate configuration. DLS data confirmed the aggregation of st-PEA into higher-order structures, and suggest the formation of rod-like particles. The dimensions derived from these light-scattering experiments correspond with st-PEA triple-helix formation. Langmuir-Blodgett surface pressure-area isotherms also point to the formation of rod-like st-PEA aggregates with similar dimensions as st-PEA triple helixes. Upon increasing the st-PEA concentration, the viscosity of the polymer solution increases strongly, and at concentrations above 20 wt % st-PEA forms an organogel. STM on this gel reveals the formation of helical aggregates on the graphite surface-solution interface with shapes and dimensions matching st-PEA triple helices, in good agreement with the structures proposed by molecular modeling. X-ray diffraction, WAXS, SAXS and solid state NMR spectroscopy studies suggest that st-PEA triple helices are also present in the solid state, up to temperatures well above the melting point of st-PEA. Formation of higher-order aggregates explains the observed LC behavior of st-PEA, emphasizing the importance of the "tertiary structure" of synthetic polymers on their material properties.
Copyright © 2013 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.

Entities:  

Keywords:  liquid crystals; polymers; sp3 backbone; supramolecular aggregates; triple helix

Mesh:

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Year:  2013        PMID: 23852805     DOI: 10.1002/chem.201301403

Source DB:  PubMed          Journal:  Chemistry        ISSN: 0947-6539            Impact factor:   5.236


  2 in total

1.  A Dinuclear Mechanism Implicated in Controlled Carbene Polymerization.

Authors:  Aleksandr V Zhukhovitskiy; Ilia J Kobylianskii; Andy A Thomas; Austin M Evans; Connor P Delaney; Nathan C Flanders; Scott E Denmark; William R Dichtel; F Dean Toste
Journal:  J Am Chem Soc       Date:  2019-04-09       Impact factor: 15.419

2.  Aqueous Phase Separation Behavior of Highly Syndiotactic, High Molecular Weight Polymers with Densely Packed Hydroxy-Containing Side Groups.

Authors:  Dorette S Tromp; Marianne Lankelma; Hannah de Valk; Emile de Josselin de Jong; Bas de Bruin
Journal:  Macromolecules       Date:  2018-09-11       Impact factor: 5.985

  2 in total

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