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Fabrication of Cellulose Acetate-Based Proton Exchange Membrane with Sulfonated SiO(2) and Plasticizers for Microbial Fuel Cell Applications

Developing a hybrid composite polymer membrane with desired functional and intrinsic properties has gained significant consideration in the fabrication of proton exchange membranes for microbial fuel cell applications. Among the different polymers, a naturally derived cellulose biopolymer has excell...

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Autores principales: Palanisamy, Gowthami, Im, Yeong Min, Muhammed, Ajmal P., Palanisamy, Karvembu, Thangarasu, Sadhasivam, Oh, Tae Hwan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10302599/
https://www.ncbi.nlm.nih.gov/pubmed/37367785
http://dx.doi.org/10.3390/membranes13060581
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author Palanisamy, Gowthami
Im, Yeong Min
Muhammed, Ajmal P.
Palanisamy, Karvembu
Thangarasu, Sadhasivam
Oh, Tae Hwan
author_facet Palanisamy, Gowthami
Im, Yeong Min
Muhammed, Ajmal P.
Palanisamy, Karvembu
Thangarasu, Sadhasivam
Oh, Tae Hwan
author_sort Palanisamy, Gowthami
collection PubMed
description Developing a hybrid composite polymer membrane with desired functional and intrinsic properties has gained significant consideration in the fabrication of proton exchange membranes for microbial fuel cell applications. Among the different polymers, a naturally derived cellulose biopolymer has excellent benefits over synthetic polymers derived from petrochemical byproducts. However, the inferior physicochemical, thermal, and mechanical properties of biopolymers limit their benefits. In this study, we developed a new hybrid polymer composite of a semi-synthetic cellulose acetate (CA) polymer derivate incorporated with inorganic silica (SiO(2)) nanoparticles, with or without a sulfonation (–SO(3)H) functional group (sSiO(2)). The excellent composite membrane formation was further improved by adding a plasticizer (glycerol (G)) and optimized by varying the SiO(2) concentration in the polymer membrane matrix. The composite membrane’s effectively improved physicochemical properties (water uptake, swelling ratio, proton conductivity, and ion exchange capacity) were identified because of the intramolecular bonding between the cellulose acetate, SiO(2), and plasticizer. The proton (H(+)) transfer properties were exhibited in the composite membrane by incorporating sSiO(2). The composite CAG–2% sSiO(2) membrane exhibited a higher proton conductivity (6.4 mS/cm) than the pristine CA membrane. The homogeneous incorporation of SiO(2) inorganic additives in the polymer matrix provided excellent mechanical properties. Due to the enhancement of the physicochemical, thermal, and mechanical properties, CAG–sSiO(2) can effectively be considered an eco-friendly, low-cost, and efficient proton exchange membrane for enhancing MFC performance.
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spelling pubmed-103025992023-06-29 Fabrication of Cellulose Acetate-Based Proton Exchange Membrane with Sulfonated SiO(2) and Plasticizers for Microbial Fuel Cell Applications Palanisamy, Gowthami Im, Yeong Min Muhammed, Ajmal P. Palanisamy, Karvembu Thangarasu, Sadhasivam Oh, Tae Hwan Membranes (Basel) Article Developing a hybrid composite polymer membrane with desired functional and intrinsic properties has gained significant consideration in the fabrication of proton exchange membranes for microbial fuel cell applications. Among the different polymers, a naturally derived cellulose biopolymer has excellent benefits over synthetic polymers derived from petrochemical byproducts. However, the inferior physicochemical, thermal, and mechanical properties of biopolymers limit their benefits. In this study, we developed a new hybrid polymer composite of a semi-synthetic cellulose acetate (CA) polymer derivate incorporated with inorganic silica (SiO(2)) nanoparticles, with or without a sulfonation (–SO(3)H) functional group (sSiO(2)). The excellent composite membrane formation was further improved by adding a plasticizer (glycerol (G)) and optimized by varying the SiO(2) concentration in the polymer membrane matrix. The composite membrane’s effectively improved physicochemical properties (water uptake, swelling ratio, proton conductivity, and ion exchange capacity) were identified because of the intramolecular bonding between the cellulose acetate, SiO(2), and plasticizer. The proton (H(+)) transfer properties were exhibited in the composite membrane by incorporating sSiO(2). The composite CAG–2% sSiO(2) membrane exhibited a higher proton conductivity (6.4 mS/cm) than the pristine CA membrane. The homogeneous incorporation of SiO(2) inorganic additives in the polymer matrix provided excellent mechanical properties. Due to the enhancement of the physicochemical, thermal, and mechanical properties, CAG–sSiO(2) can effectively be considered an eco-friendly, low-cost, and efficient proton exchange membrane for enhancing MFC performance. MDPI 2023-06-02 /pmc/articles/PMC10302599/ /pubmed/37367785 http://dx.doi.org/10.3390/membranes13060581 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Palanisamy, Gowthami
Im, Yeong Min
Muhammed, Ajmal P.
Palanisamy, Karvembu
Thangarasu, Sadhasivam
Oh, Tae Hwan
Fabrication of Cellulose Acetate-Based Proton Exchange Membrane with Sulfonated SiO(2) and Plasticizers for Microbial Fuel Cell Applications
title Fabrication of Cellulose Acetate-Based Proton Exchange Membrane with Sulfonated SiO(2) and Plasticizers for Microbial Fuel Cell Applications
title_full Fabrication of Cellulose Acetate-Based Proton Exchange Membrane with Sulfonated SiO(2) and Plasticizers for Microbial Fuel Cell Applications
title_fullStr Fabrication of Cellulose Acetate-Based Proton Exchange Membrane with Sulfonated SiO(2) and Plasticizers for Microbial Fuel Cell Applications
title_full_unstemmed Fabrication of Cellulose Acetate-Based Proton Exchange Membrane with Sulfonated SiO(2) and Plasticizers for Microbial Fuel Cell Applications
title_short Fabrication of Cellulose Acetate-Based Proton Exchange Membrane with Sulfonated SiO(2) and Plasticizers for Microbial Fuel Cell Applications
title_sort fabrication of cellulose acetate-based proton exchange membrane with sulfonated sio(2) and plasticizers for microbial fuel cell applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10302599/
https://www.ncbi.nlm.nih.gov/pubmed/37367785
http://dx.doi.org/10.3390/membranes13060581
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