Cargando…

High Cyclability Energy Storage Device with Optimized Hydroxyethyl Cellulose-Dextran-Based Polymer Electrolytes: Structural, Electrical and Electrochemical Investigations

The preparation of a dextran (Dex)-hydroxyethyl cellulose (HEC) blend impregnated with ammonium bromide (NH(4)Br) is done via the solution cast method. The phases due to crystalline and amorphous regions were separated and used to estimate the degree of crystallinity. The most amorphous blend was di...

Descripción completa

Detalles Bibliográficos
Autores principales: Azha, Muhammad A. S., Dannoun, Elham M. A., Aziz, Shujahadeen B., Kadir, Mohd F. Z., Zaki, Zaki Ismail, El-Bahy, Zeinhom M., Sulaiman, Mazdida, Nofal, Muaffaq M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8540470/
https://www.ncbi.nlm.nih.gov/pubmed/34685361
http://dx.doi.org/10.3390/polym13203602
_version_ 1784588994700378112
author Azha, Muhammad A. S.
Dannoun, Elham M. A.
Aziz, Shujahadeen B.
Kadir, Mohd F. Z.
Zaki, Zaki Ismail
El-Bahy, Zeinhom M.
Sulaiman, Mazdida
Nofal, Muaffaq M.
author_facet Azha, Muhammad A. S.
Dannoun, Elham M. A.
Aziz, Shujahadeen B.
Kadir, Mohd F. Z.
Zaki, Zaki Ismail
El-Bahy, Zeinhom M.
Sulaiman, Mazdida
Nofal, Muaffaq M.
author_sort Azha, Muhammad A. S.
collection PubMed
description The preparation of a dextran (Dex)-hydroxyethyl cellulose (HEC) blend impregnated with ammonium bromide (NH(4)Br) is done via the solution cast method. The phases due to crystalline and amorphous regions were separated and used to estimate the degree of crystallinity. The most amorphous blend was discovered to be a blend of 40 wt% Dex and 60 wt% HEC. This polymer blend serves as the channel for ions to be conducted and electrodes separator. The conductivity has been optimized at (1.47 ± 0.12) × 10(−4) S cm(−1) with 20 wt% NH(4)Br. The EIS plots were fitted with EEC circuits. The DC conductivity against 1000/T follows the Arrhenius model. The highest conducting electrolyte possesses an ionic number density and mobility of 1.58 × 10(21) cm(−3) and 6.27 × 10(−7) V(−1)s(−1) cm(2), respectively. The TNM and LSV investigations were carried out on the highest conducting system. A non-Faradic behavior was predicted from the CV pattern. The fabricated electrical double layer capacitor (EDLC) achieved 8000 cycles, with a specific capacitance, internal resistance, energy density, and power density of 31.7 F g(−1), 80 Ω, 3.18 Wh kg(−1), and 922.22 W kg(−1), respectively.
format Online
Article
Text
id pubmed-8540470
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-85404702021-10-24 High Cyclability Energy Storage Device with Optimized Hydroxyethyl Cellulose-Dextran-Based Polymer Electrolytes: Structural, Electrical and Electrochemical Investigations Azha, Muhammad A. S. Dannoun, Elham M. A. Aziz, Shujahadeen B. Kadir, Mohd F. Z. Zaki, Zaki Ismail El-Bahy, Zeinhom M. Sulaiman, Mazdida Nofal, Muaffaq M. Polymers (Basel) Article The preparation of a dextran (Dex)-hydroxyethyl cellulose (HEC) blend impregnated with ammonium bromide (NH(4)Br) is done via the solution cast method. The phases due to crystalline and amorphous regions were separated and used to estimate the degree of crystallinity. The most amorphous blend was discovered to be a blend of 40 wt% Dex and 60 wt% HEC. This polymer blend serves as the channel for ions to be conducted and electrodes separator. The conductivity has been optimized at (1.47 ± 0.12) × 10(−4) S cm(−1) with 20 wt% NH(4)Br. The EIS plots were fitted with EEC circuits. The DC conductivity against 1000/T follows the Arrhenius model. The highest conducting electrolyte possesses an ionic number density and mobility of 1.58 × 10(21) cm(−3) and 6.27 × 10(−7) V(−1)s(−1) cm(2), respectively. The TNM and LSV investigations were carried out on the highest conducting system. A non-Faradic behavior was predicted from the CV pattern. The fabricated electrical double layer capacitor (EDLC) achieved 8000 cycles, with a specific capacitance, internal resistance, energy density, and power density of 31.7 F g(−1), 80 Ω, 3.18 Wh kg(−1), and 922.22 W kg(−1), respectively. MDPI 2021-10-19 /pmc/articles/PMC8540470/ /pubmed/34685361 http://dx.doi.org/10.3390/polym13203602 Text en © 2021 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
Azha, Muhammad A. S.
Dannoun, Elham M. A.
Aziz, Shujahadeen B.
Kadir, Mohd F. Z.
Zaki, Zaki Ismail
El-Bahy, Zeinhom M.
Sulaiman, Mazdida
Nofal, Muaffaq M.
High Cyclability Energy Storage Device with Optimized Hydroxyethyl Cellulose-Dextran-Based Polymer Electrolytes: Structural, Electrical and Electrochemical Investigations
title High Cyclability Energy Storage Device with Optimized Hydroxyethyl Cellulose-Dextran-Based Polymer Electrolytes: Structural, Electrical and Electrochemical Investigations
title_full High Cyclability Energy Storage Device with Optimized Hydroxyethyl Cellulose-Dextran-Based Polymer Electrolytes: Structural, Electrical and Electrochemical Investigations
title_fullStr High Cyclability Energy Storage Device with Optimized Hydroxyethyl Cellulose-Dextran-Based Polymer Electrolytes: Structural, Electrical and Electrochemical Investigations
title_full_unstemmed High Cyclability Energy Storage Device with Optimized Hydroxyethyl Cellulose-Dextran-Based Polymer Electrolytes: Structural, Electrical and Electrochemical Investigations
title_short High Cyclability Energy Storage Device with Optimized Hydroxyethyl Cellulose-Dextran-Based Polymer Electrolytes: Structural, Electrical and Electrochemical Investigations
title_sort high cyclability energy storage device with optimized hydroxyethyl cellulose-dextran-based polymer electrolytes: structural, electrical and electrochemical investigations
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8540470/
https://www.ncbi.nlm.nih.gov/pubmed/34685361
http://dx.doi.org/10.3390/polym13203602
work_keys_str_mv AT azhamuhammadas highcyclabilityenergystoragedevicewithoptimizedhydroxyethylcellulosedextranbasedpolymerelectrolytesstructuralelectricalandelectrochemicalinvestigations
AT dannounelhamma highcyclabilityenergystoragedevicewithoptimizedhydroxyethylcellulosedextranbasedpolymerelectrolytesstructuralelectricalandelectrochemicalinvestigations
AT azizshujahadeenb highcyclabilityenergystoragedevicewithoptimizedhydroxyethylcellulosedextranbasedpolymerelectrolytesstructuralelectricalandelectrochemicalinvestigations
AT kadirmohdfz highcyclabilityenergystoragedevicewithoptimizedhydroxyethylcellulosedextranbasedpolymerelectrolytesstructuralelectricalandelectrochemicalinvestigations
AT zakizakiismail highcyclabilityenergystoragedevicewithoptimizedhydroxyethylcellulosedextranbasedpolymerelectrolytesstructuralelectricalandelectrochemicalinvestigations
AT elbahyzeinhomm highcyclabilityenergystoragedevicewithoptimizedhydroxyethylcellulosedextranbasedpolymerelectrolytesstructuralelectricalandelectrochemicalinvestigations
AT sulaimanmazdida highcyclabilityenergystoragedevicewithoptimizedhydroxyethylcellulosedextranbasedpolymerelectrolytesstructuralelectricalandelectrochemicalinvestigations
AT nofalmuaffaqm highcyclabilityenergystoragedevicewithoptimizedhydroxyethylcellulosedextranbasedpolymerelectrolytesstructuralelectricalandelectrochemicalinvestigations