Impact of Side Chain Extension on the Morphology and Electrochemistry of Phosphonated Poly(Ethylenedioxythiophene) Derivatives

Author:

Hopkins Jonathan1,Ta Daniel2,Lauto Antonio2,Baker Carly3,Daniels John1,Wagner Pawel3,Wagner Klaudia K.3,Kirby Nigel4,Cazorla Claudio5,Officer David L.3,Mawad Damia16ORCID

Affiliation:

1. School of Materials Science and Engineering UNSW Sydney Sydney New South Wales 2052 Australia

2. School of Science Western Sydney University Locked Bag 1797 Penrith New South Wales 2751 Australia

3. Intelligent Polymer Research Institute and ARC Centre of Excellence for Electromaterials Science University of Wollongong Wollongong New South Wales 2522 Australia

4. Australian Synchrotron 800 Blackburn Road Clayton Victoria 3168 Australia

5. Departament de Física Universitat Politècnica de Catalunya Campus Nord B4‐B5 Barcelona 08034 Spain

6. Australian Centre for NanoMedicine UNSW Sydney Sydney New South Wales 2052 Australia

Abstract

AbstractOne factor with great bearing on the electrochemical performance of conjugated polymers is the film morphology. A balance between crystalline and amorphous domains needs to be achieved for the polymer to have an optimal ionic‐electronic conductance. Herein, the morphological and electrochemical properties of poly(ethylenedioxythiophene) polymers functionalized with phosphonate groups separated by methylene and butylene alkyl spacers from the backbone are compared. Extending the spacer from methylene to butylene increases structural ordering in the solid state as revealed by grazing‐incidence wide‐angle X‐ray scattering. However, the ordered domains are only short range, suggestive of a paracrystalline morphology in which ordered regions are separated by amorphous regions. This has a negative impact on the intermolecular charge transport. The longer spacer appears to have impeded the uptake of hydrated counterions, seen by the increase in the ionization potential and energy requirement for electrochemical switching, as well as the decrease in the volumetric capacitance. These results elucidate the advantages of having the phosphonate pendant group close to the backbone, separated only by a methylene spacer. This synthetic design likely facilitates hydrated counterions to accumulate around the polar phosphonate groups, close to the doped backbone where they can easily compensate the charge carriers formed upon oxidation.

Funder

Australian Research Council

Publisher

Wiley

Subject

Industrial and Manufacturing Engineering,Mechanics of Materials,General Materials Science

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