Solid Polymer Electrolytes Based on Polylactic Acid Nanofiber Mats Coated with Polypyrrole

The production of electroconductive nanofiber membranes made from polylactic acid (PLA) coated with polypyrrole (PPy) is investigated, performing a scanning of different reaction parameters and studying their physicochemical and dielectric properties. Depending on PPy content, a transition between c...

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Veröffentlicht in:Macromolecular materials and engineering 2021-02, Vol.306 (2), p.n/a
Hauptverfasser: Gisbert Roca, Fernando, García‐Bernabé, Abel, Compañ Moreno, Vicente, Martínez‐Ramos, Cristina, Monleón Pradas, Manuel
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container_title Macromolecular materials and engineering
container_volume 306
creator Gisbert Roca, Fernando
García‐Bernabé, Abel
Compañ Moreno, Vicente
Martínez‐Ramos, Cristina
Monleón Pradas, Manuel
description The production of electroconductive nanofiber membranes made from polylactic acid (PLA) coated with polypyrrole (PPy) is investigated, performing a scanning of different reaction parameters and studying their physicochemical and dielectric properties. Depending on PPy content, a transition between conduction mechanisms is observed, with a temperature‐dependent relaxation process for samples without PPy, a temperature‐independent conduction process for samples with high contents of PPy and a combination of both processes for samples with low contents of PPy. A homogeneous and continuous coating is achieved from 23 wt% PPy, observing a percolation effect around 27 wt% PPy. Higher wt% PPy allow to obtain higher conductivities, but PPy aggregates appear from 34% wt% PPy. The high conductivity values obtained for electrospun membranes both through‐plane and in‐plane (above 0.05 and 0.20 S cm–1, respectively, at room temperature) for the highest wt% of PPy, their porous structure with high specific surface area and their thermal stability below 140 °C make them candidates for many potential applications as solid polymer electrolytes in, for example, batteries, supercapacitors, sensors, photosensors, or polymer electrolyte membrane fuel cells (PEMFCs). In addition, the biocompatibility of PLA‐PPy membranes expand their potential applications also in the field of tissue engineering and implantable devices. Conductive electroactive nanofiber membranes made from polylactic acid coated with polypyrrole are studied as a function of different reaction parameters and their physicochemical and dielectric properties are characterized. Their high conductivity, both through‐plane and in‐plane, their porous structure with high specific surface area and their thermal stability below 140°C make them candidates for many potential applications as solid polymer electrolytes.
doi_str_mv 10.1002/mame.202000584
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Depending on PPy content, a transition between conduction mechanisms is observed, with a temperature‐dependent relaxation process for samples without PPy, a temperature‐independent conduction process for samples with high contents of PPy and a combination of both processes for samples with low contents of PPy. A homogeneous and continuous coating is achieved from 23 wt% PPy, observing a percolation effect around 27 wt% PPy. Higher wt% PPy allow to obtain higher conductivities, but PPy aggregates appear from 34% wt% PPy. The high conductivity values obtained for electrospun membranes both through‐plane and in‐plane (above 0.05 and 0.20 S cm–1, respectively, at room temperature) for the highest wt% of PPy, their porous structure with high specific surface area and their thermal stability below 140 °C make them candidates for many potential applications as solid polymer electrolytes in, for example, batteries, supercapacitors, sensors, photosensors, or polymer electrolyte membrane fuel cells (PEMFCs). In addition, the biocompatibility of PLA‐PPy membranes expand their potential applications also in the field of tissue engineering and implantable devices. Conductive electroactive nanofiber membranes made from polylactic acid coated with polypyrrole are studied as a function of different reaction parameters and their physicochemical and dielectric properties are characterized. 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subjects Biocompatibility
Conduction heating
Continuous coating
Dielectric properties
Electrolytes
Electrolytic cells
ion exchangers
Membranes
Molten salt electrolytes
Nanofibers
Percolation
polyelectrolytes
Polylactic acid
Polymers
Polypyrroles
Proton exchange membrane fuel cells
Room temperature
Solid electrolytes
Surface stability
Temperature dependence
Thermal stability
Tissue engineering
title Solid Polymer Electrolytes Based on Polylactic Acid Nanofiber Mats Coated with Polypyrrole
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