Cargando…

Strategically Altered Fluorinated Polymer at Nanoscale for Enhancing Proton Conduction and Power Generation from Salinity Gradient

Reverse electrodialysis (RED) generates power directly by transforming salinity gradient into electrical energy. The ion transport properties of the ion-exchange membranes need to be investigated deeply to improve the limiting efficiencies of the RED. The interaction between “counterions” and “ionic...

Descripción completa

Detalles Bibliográficos
Autores principales: Sharma, Prem P., Singh, Rahul, Shah, Syed Abdullah, Yoo, Cheol Hun, Lee, Albert S., Kim, Daejoong, Na, Jeong-Geol, Lee, Jong Suk
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9025533/
https://www.ncbi.nlm.nih.gov/pubmed/35448365
http://dx.doi.org/10.3390/membranes12040395
_version_ 1784690896154918912
author Sharma, Prem P.
Singh, Rahul
Shah, Syed Abdullah
Yoo, Cheol Hun
Lee, Albert S.
Kim, Daejoong
Na, Jeong-Geol
Lee, Jong Suk
author_facet Sharma, Prem P.
Singh, Rahul
Shah, Syed Abdullah
Yoo, Cheol Hun
Lee, Albert S.
Kim, Daejoong
Na, Jeong-Geol
Lee, Jong Suk
author_sort Sharma, Prem P.
collection PubMed
description Reverse electrodialysis (RED) generates power directly by transforming salinity gradient into electrical energy. The ion transport properties of the ion-exchange membranes need to be investigated deeply to improve the limiting efficiencies of the RED. The interaction between “counterions” and “ionic species” in the membrane requires a fundamental understanding of the phase separation process. Here, we report on sulfonated poly(vinylidene fluoride-co-hexafluoropropylene)/graphitic carbon nitride nanocomposites for RED application. We demonstrate that the rearrangement of the hydrophilic and hydrophobic domains in the semicrystalline polymer at a nanoscale level improves ion conduction. The rearrangement of the ionic species in polymer and “the functionalized nanosheet with ionic species” enhances the proton conduction in the hybrid membrane without a change in the structural integrity of the membrane. A detailed discussion has been provided on the membrane nanostructure, chemical configuration, structural robustness, surface morphology, and ion transport properties of the prepared hybrid membrane. Furthermore, the RED device was fabricated by combining synthesized cation exchange membrane with commercially available anion exchange membrane, NEOSEPTA, and a maximum power density of 0.2 W m(−2) was successfully achieved under varying flow rates at the ambient condition.
format Online
Article
Text
id pubmed-9025533
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-90255332022-04-23 Strategically Altered Fluorinated Polymer at Nanoscale for Enhancing Proton Conduction and Power Generation from Salinity Gradient Sharma, Prem P. Singh, Rahul Shah, Syed Abdullah Yoo, Cheol Hun Lee, Albert S. Kim, Daejoong Na, Jeong-Geol Lee, Jong Suk Membranes (Basel) Article Reverse electrodialysis (RED) generates power directly by transforming salinity gradient into electrical energy. The ion transport properties of the ion-exchange membranes need to be investigated deeply to improve the limiting efficiencies of the RED. The interaction between “counterions” and “ionic species” in the membrane requires a fundamental understanding of the phase separation process. Here, we report on sulfonated poly(vinylidene fluoride-co-hexafluoropropylene)/graphitic carbon nitride nanocomposites for RED application. We demonstrate that the rearrangement of the hydrophilic and hydrophobic domains in the semicrystalline polymer at a nanoscale level improves ion conduction. The rearrangement of the ionic species in polymer and “the functionalized nanosheet with ionic species” enhances the proton conduction in the hybrid membrane without a change in the structural integrity of the membrane. A detailed discussion has been provided on the membrane nanostructure, chemical configuration, structural robustness, surface morphology, and ion transport properties of the prepared hybrid membrane. Furthermore, the RED device was fabricated by combining synthesized cation exchange membrane with commercially available anion exchange membrane, NEOSEPTA, and a maximum power density of 0.2 W m(−2) was successfully achieved under varying flow rates at the ambient condition. MDPI 2022-04-01 /pmc/articles/PMC9025533/ /pubmed/35448365 http://dx.doi.org/10.3390/membranes12040395 Text en © 2022 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
Sharma, Prem P.
Singh, Rahul
Shah, Syed Abdullah
Yoo, Cheol Hun
Lee, Albert S.
Kim, Daejoong
Na, Jeong-Geol
Lee, Jong Suk
Strategically Altered Fluorinated Polymer at Nanoscale for Enhancing Proton Conduction and Power Generation from Salinity Gradient
title Strategically Altered Fluorinated Polymer at Nanoscale for Enhancing Proton Conduction and Power Generation from Salinity Gradient
title_full Strategically Altered Fluorinated Polymer at Nanoscale for Enhancing Proton Conduction and Power Generation from Salinity Gradient
title_fullStr Strategically Altered Fluorinated Polymer at Nanoscale for Enhancing Proton Conduction and Power Generation from Salinity Gradient
title_full_unstemmed Strategically Altered Fluorinated Polymer at Nanoscale for Enhancing Proton Conduction and Power Generation from Salinity Gradient
title_short Strategically Altered Fluorinated Polymer at Nanoscale for Enhancing Proton Conduction and Power Generation from Salinity Gradient
title_sort strategically altered fluorinated polymer at nanoscale for enhancing proton conduction and power generation from salinity gradient
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9025533/
https://www.ncbi.nlm.nih.gov/pubmed/35448365
http://dx.doi.org/10.3390/membranes12040395
work_keys_str_mv AT sharmapremp strategicallyalteredfluorinatedpolymeratnanoscaleforenhancingprotonconductionandpowergenerationfromsalinitygradient
AT singhrahul strategicallyalteredfluorinatedpolymeratnanoscaleforenhancingprotonconductionandpowergenerationfromsalinitygradient
AT shahsyedabdullah strategicallyalteredfluorinatedpolymeratnanoscaleforenhancingprotonconductionandpowergenerationfromsalinitygradient
AT yoocheolhun strategicallyalteredfluorinatedpolymeratnanoscaleforenhancingprotonconductionandpowergenerationfromsalinitygradient
AT leealberts strategicallyalteredfluorinatedpolymeratnanoscaleforenhancingprotonconductionandpowergenerationfromsalinitygradient
AT kimdaejoong strategicallyalteredfluorinatedpolymeratnanoscaleforenhancingprotonconductionandpowergenerationfromsalinitygradient
AT najeonggeol strategicallyalteredfluorinatedpolymeratnanoscaleforenhancingprotonconductionandpowergenerationfromsalinitygradient
AT leejongsuk strategicallyalteredfluorinatedpolymeratnanoscaleforenhancingprotonconductionandpowergenerationfromsalinitygradient