PEDOT-polyamine composite films for bioelectrochemical platforms - flexible and easy to derivatize

We report a straightforward route for the preparation of flexible, electrochemically stable and easily functionalizable poly(3,4-ethylenedioxythiophene) (PEDOT) composite films deposited on PET foils as biosensing platforms. For this purpose, poly(allylamine) hydrochloride (PAH) was blended with PED...

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Veröffentlicht in:Materials Science & Engineering C 2020-04, Vol.109, p.110575-110575, Article 110575
Hauptverfasser: Sappia, Luciano D., Piccinini, Esteban, von Binderling, Catalina, Knoll, Wolfgang, Marmisollé, Waldemar, Azzaroni, Omar
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Sprache:eng
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Zusammenfassung:We report a straightforward route for the preparation of flexible, electrochemically stable and easily functionalizable poly(3,4-ethylenedioxythiophene) (PEDOT) composite films deposited on PET foils as biosensing platforms. For this purpose, poly(allylamine) hydrochloride (PAH) was blended with PEDOT to provide amine-bearing sites for further biofunctionalization as well as to improve the mechanical properties of the films. The conducting PEDOT-PAH composite films were characterized by cyclic voltammetry, UV–vis and Raman spectroscopies. An exhaustive stability study was carried out from the mechanical, morphological and electrochemical viewpoint. Subsequent sugar functionalization of the available amine groups from PAH allowed for the specific recognition of lectins and the subsequent self-assembly of glycoenzymes (glucose oxidase and horseradish peroxidase) concomitant with the prevention of non-specific protein fouling. The platforms presented good bioelectrochemical performance (glucose oxidation and hydrogen peroxide reduction) in the presence of redox mediators. The developed composite films constitute a promising option for the construction of all-polymer biosensing platforms with great potential owing to their flexibility, high transmittance, electrochemical stability and the possibility of glycosylation, which provides a simple route for specific biofunctionalization as well as an effective antifouling strategy. [Display omitted] •Electrochemically stable PEDOT-polyallylamine films are deposited on flexible PET foils.•Available amine groups in the composite materials allow post-functionalization.•Sugar post-functionalization allows lectins recognition and prevents protein fouling.•Glucose oxidase and horseradish peroxidase are self-assembled on the surfaces.•The all-polymer platforms respond selectively to glucose and hydrogen peroxide.
ISSN:0928-4931
1873-0191
DOI:10.1016/j.msec.2019.110575