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Tuning the Nanoporous Structure of Carbons Derived from the Composite of Cross-Linked Polymers for Charge Storage Applications
[Image: see text] Controlling the porosity of carbon-based electrodes is key toward performance improvement of charge storage devices, e.g., supercapacitors, which deliver high power via fast charge/discharge of ions at the electrical double layer (EDL). Here, eco-friendly preparation of carbons wit...
Autores principales: | , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical Society
2021
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7903703/ https://www.ncbi.nlm.nih.gov/pubmed/33644701 http://dx.doi.org/10.1021/acsaem.0c02908 |
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author | Barzegar, Farshad Pavlenko, Vladimir Zahid, Muhammad Bello, Abdulhakeem Xia, Xiaohua Manyala, Ncholu Ozoemena, Kenneth I. Abbas, Qamar |
author_facet | Barzegar, Farshad Pavlenko, Vladimir Zahid, Muhammad Bello, Abdulhakeem Xia, Xiaohua Manyala, Ncholu Ozoemena, Kenneth I. Abbas, Qamar |
author_sort | Barzegar, Farshad |
collection | PubMed |
description | [Image: see text] Controlling the porosity of carbon-based electrodes is key toward performance improvement of charge storage devices, e.g., supercapacitors, which deliver high power via fast charge/discharge of ions at the electrical double layer (EDL). Here, eco-friendly preparation of carbons with adaptable nanopores from polymers obtained via microwave-assisted cross-linking of poly(vinyl alcohol) (PVA) and poly(vinyl pyrrolidone) (PVP) is reported. The polymeric hydrogels possess porous and foam-like structures, giving excellent control of porosity at the precursor level, which are then subjected to activation at high temperatures of 700–900 °C to prepare carbons with a surface area of 1846 m(2) g(–1) and uniform distribution of micro-, meso-, and macropores. Then, graphene as an additive to hydrogel precursor improves the surface characteristics and elaborates porous texture, giving composite materials with a surface area of 3107 m(2) g(–1). These carbons show an interconnected porous structure and bimodal pore size distribution suitable for facile ionic transport. When implemented in symmetric supercapacitor configuration with aqueous 5 mol L(–1) NaNO(3) electrolyte, a capacitance of 163 F g(–1) (per average mass of one electrode) and stable evolution of capacitance, coulombic, and energy efficiency during 10 000 galvanostatic charge/discharge up to 1.6 V at 1.0 A g(–1) have been achieved. |
format | Online Article Text |
id | pubmed-7903703 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2021 |
publisher | American Chemical Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-79037032021-02-25 Tuning the Nanoporous Structure of Carbons Derived from the Composite of Cross-Linked Polymers for Charge Storage Applications Barzegar, Farshad Pavlenko, Vladimir Zahid, Muhammad Bello, Abdulhakeem Xia, Xiaohua Manyala, Ncholu Ozoemena, Kenneth I. Abbas, Qamar ACS Appl Energy Mater [Image: see text] Controlling the porosity of carbon-based electrodes is key toward performance improvement of charge storage devices, e.g., supercapacitors, which deliver high power via fast charge/discharge of ions at the electrical double layer (EDL). Here, eco-friendly preparation of carbons with adaptable nanopores from polymers obtained via microwave-assisted cross-linking of poly(vinyl alcohol) (PVA) and poly(vinyl pyrrolidone) (PVP) is reported. The polymeric hydrogels possess porous and foam-like structures, giving excellent control of porosity at the precursor level, which are then subjected to activation at high temperatures of 700–900 °C to prepare carbons with a surface area of 1846 m(2) g(–1) and uniform distribution of micro-, meso-, and macropores. Then, graphene as an additive to hydrogel precursor improves the surface characteristics and elaborates porous texture, giving composite materials with a surface area of 3107 m(2) g(–1). These carbons show an interconnected porous structure and bimodal pore size distribution suitable for facile ionic transport. When implemented in symmetric supercapacitor configuration with aqueous 5 mol L(–1) NaNO(3) electrolyte, a capacitance of 163 F g(–1) (per average mass of one electrode) and stable evolution of capacitance, coulombic, and energy efficiency during 10 000 galvanostatic charge/discharge up to 1.6 V at 1.0 A g(–1) have been achieved. American Chemical Society 2021-01-19 2021-02-22 /pmc/articles/PMC7903703/ /pubmed/33644701 http://dx.doi.org/10.1021/acsaem.0c02908 Text en © 2021 The Authors. Published by American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited. |
spellingShingle | Barzegar, Farshad Pavlenko, Vladimir Zahid, Muhammad Bello, Abdulhakeem Xia, Xiaohua Manyala, Ncholu Ozoemena, Kenneth I. Abbas, Qamar Tuning the Nanoporous Structure of Carbons Derived from the Composite of Cross-Linked Polymers for Charge Storage Applications |
title | Tuning
the Nanoporous Structure of Carbons Derived
from the Composite of Cross-Linked Polymers for Charge Storage Applications |
title_full | Tuning
the Nanoporous Structure of Carbons Derived
from the Composite of Cross-Linked Polymers for Charge Storage Applications |
title_fullStr | Tuning
the Nanoporous Structure of Carbons Derived
from the Composite of Cross-Linked Polymers for Charge Storage Applications |
title_full_unstemmed | Tuning
the Nanoporous Structure of Carbons Derived
from the Composite of Cross-Linked Polymers for Charge Storage Applications |
title_short | Tuning
the Nanoporous Structure of Carbons Derived
from the Composite of Cross-Linked Polymers for Charge Storage Applications |
title_sort | tuning
the nanoporous structure of carbons derived
from the composite of cross-linked polymers for charge storage applications |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7903703/ https://www.ncbi.nlm.nih.gov/pubmed/33644701 http://dx.doi.org/10.1021/acsaem.0c02908 |
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