High-Strength Liquid Crystal Polymer-Graphene Oxide Nanocomposites from Water.

ACS Appl Mater Interfaces

Department of Applied Physical Sciences, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina 27599-3050, United States.

Published: April 2022

AI Article Synopsis

  • The study focuses on the development of nanocomposite films made from a sulfonated, all-aromatic polyamide (PBDT) and graphene oxide (GO) platelets, enhanced through thermal reduction of GO to reduced GO (rGO).
  • The results show improved structural alignment and mechanical properties of the PBDT-rGO films, with significant increases in Young's modulus (from 16 to 37 GPa) and tensile strength (from 210 to 640 MPa) at 1.8 vol % rGO.
  • Techniques like X-ray scattering and dynamic mechanical thermal analysis confirm that the incorporation of rGO enhances local stiffness and alters the interaction energy within the polymer matrix.

Article Abstract

We report on the morphology and mechanical properties of nanocomposite films derived from aqueous, hybrid liquid crystalline mixtures of rodlike aggregates of a sulfonated, all-aromatic polyamide, poly(2,2'-disulfonyl-4,4'-benzidine terephthalamide) (PBDT), and graphene oxide (GO) platelets. An isothermal step at 200 °C facilitates in situ partial thermal reduction of GO to reduced GO (rGO) in nanocomposite films. X-ray scattering studies reveal that PBDT-rGO nanocomposites exhibit both higher in-plane alignment of PBDT (the order parameter increases from 0.79 to 0.9 at 1.8 vol % rGO) and alignment along the casting direction (from 0.1 to 0.6 at 1.8 vol % rGO). From dynamic mechanical thermal analysis, the interaction between PBDT and rGO causes the β-relaxation activation energy for PBDT to increase with rGO concentration. Modulus mapping of nanocomposites using atomic force microscopy demonstrates enhanced local stiffness, indicating reinforcement. From stress-strain analysis, the average Young's modulus increases from 16 to 37 GPa at 1.8 vol % rGO and the average tensile strength increases from 210 to 640 MPa. Despite polymer alignment along the casting direction, an average transverse tensile strength of 230 MPa is obtained.

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Source
http://dx.doi.org/10.1021/acsami.2c00186DOI Listing

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