Literature DB >> 31507155

Nanofibrillar Ionic Polymer Composites Enable High-Modulus Ion-Conducting Membranes.

Ryan J Fox, Deyang Yu1, Maruti Hegde, Amar S Kumbhar, Louis A Madsen1, Theo J Dingemans.   

Abstract

Polymer electrolyte membranes (PEMs) with high volume fractions of ionic liquids (IL) and high modulus show promise for enabling next-generation gas separations, and electrochemical energy storage and conversion applications. Herein, we present a conductive polymer-IL composite based on a sulfonated all-aromatic polyamide (sulfo-aramid, PBDT) and a model IL, which we term a PBDT-IL composite. The polymer forms glassy and high-aspect-ratio hierarchical nanofibrils, which enable fabrication of PEMs with both high volume fractions of IL and high elastic modulus. We report direct evidence for nanofibrillar networks that serve as matrices for dispersed ILs using atomic force microscopy and small- and wide-angle X-ray scattering. These supramolecular nanofibrils form through myriad noncovalent interactions to produce a physically cross-linked glassy network, which boasts the best combination of room-temperature modulus (0.1-2 GPa) and ionic conductivity (8-4 mS cm-1) of any polymer-IL electrolyte reported to date. The ultrahigh thermomechanical properties of our PBDT-IL composites provide high moduli (∼1 GPa) at temperatures up to 200 °C, enabling a wide device operation window with stable mechanical properties. Together, the high-performance nature of sulfo-aramids in concert with the inherent properties of ILs imparts PBDT-IL composites with nonflammability and thermal stability up to 350 °C. Thus, nanofibrillar ionic networks based on sulfo-aramids and ILs represent a new design paradigm affording PEMs with exceptionally high moduli at exceedingly low polymer concentrations. This new design strategy will drive the development of new high-performance conductive membranes that can be used for the design of gas separation membranes and in electrochemical applications, such as fuel cells and Li-metal batteries.

Entities:  

Keywords:  composite; ion gel; ionic liquid; liquid crystal; modulus; polymer; polymer electrolyte membrane

Year:  2019        PMID: 31507155     DOI: 10.1021/acsami.9b10921

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  2 in total

1.  Al2O3 Dispersion-Induced Micropapillae in an Epoxy Composite Coating and Implications in Thermal Conductivity.

Authors:  Zihe Pan; Yanhong Liu; Fei Wang; Guangjun Lu; Fengling Yang; Fangqin Cheng
Journal:  ACS Omega       Date:  2021-07-08

2.  Synthesis of Bamboo-like Multiwall Carbon Nanotube-Poly(Acrylic Acid-co-Itaconic Acid)/NaOH Composite Hydrogel and its Potential Application for Electrochemical Detection of Cadmium(II).

Authors:  Luis F Chazaro-Ruiz; Miguel Olvera-Sosa; Gabriela Vidal; J Rene Rangel-Mendez; Gabriela Palestino; Fatima Perez; Wei Zhang
Journal:  Biosensors (Basel)       Date:  2020-10-19
  2 in total

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