Impact of Choline Chloride/1,4-Butanediol Deep Eutectic Solvent on Tamarind Seed Polysaccharide-Based Polymer Electrolyte Films

The presence of hydroxyl groups in polysaccharides results in brittle electrolyte films with poor ionic conductivity. The incorporation of traditional plasticizers like ethylene carbonate (EC) and propylene carbonate (PC) had effectively addressed the brittleness problem, but these plasticizers pose...

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Published in:Malaysian Journal of Chemistry
Main Author: Fauzee M.H.M.; Suddin N.F.A.; Zailani N.A.M.; Nazir K.; Ismail S.N.S.; Zaini N.A.M.; Yahya S.; Latif F.A.
Format: Article
Language:English
Published: Malaysian Institute of Chemistry 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85201703919&doi=10.55373%2fmjchem.v26i4.167&partnerID=40&md5=4da77a112efef11a881ffb37a0921342
id 2-s2.0-85201703919
spelling 2-s2.0-85201703919
Fauzee M.H.M.; Suddin N.F.A.; Zailani N.A.M.; Nazir K.; Ismail S.N.S.; Zaini N.A.M.; Yahya S.; Latif F.A.
Impact of Choline Chloride/1,4-Butanediol Deep Eutectic Solvent on Tamarind Seed Polysaccharide-Based Polymer Electrolyte Films
2024
Malaysian Journal of Chemistry
26
4
10.55373/mjchem.v26i4.167
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85201703919&doi=10.55373%2fmjchem.v26i4.167&partnerID=40&md5=4da77a112efef11a881ffb37a0921342
The presence of hydroxyl groups in polysaccharides results in brittle electrolyte films with poor ionic conductivity. The incorporation of traditional plasticizers like ethylene carbonate (EC) and propylene carbonate (PC) had effectively addressed the brittleness problem, but these plasticizers pose health risks. Thus, in this study, different weight percentages (%) (i.e., 0.2, 0.3, 0.4, 0.5, and 0.6 wt%) of choline chloride:1,4-butanediol (ChCl:1,4-BD), deep eutectic solvent (DES) with lower toxicity were incorporated into the tamarind seed polysaccharide (TSP) matrix. Then, the structural, electrical, morphological, and mechanical properties of the films obtained were evaluated. The polymer electrolyte films were prepared using the solution casting technique and a fixed amount of lithium triflate (LiTf) was added as the additional conducting species. A flexible and free-standing film of TSP-based electrolyte at the highest ionic conductivity of 2.30 x 10-4 S cm-1 was successfully obtained with the addition of 0.4 wt% of DES (TSPL 0.4). This was probably due to the successful prevention of hydrogen bonding as DES occupied the spaces between TSP chains. This could be further supported by the TSP-DES, TSP-LiTf, and salt-DES interactions as confirmed from Fourier transform infrared spectroscopy (FTIR) analyses. The smooth surface with no agglomeration due to salt and DES particles was observed for the optical micrograph of TSPL 0.4. This is due to the salt-DES interaction, which also contributes to the enhancement of the ionic conductivity of TSPL 0.4. The tensile test demonstrates the maximum tensile strain of 50.00% for TSPL 0.4, indicating the highest flexibility of the sample. © 2024 Malaysian Institute of Chemistry. All rights reserved.
Malaysian Institute of Chemistry
15112292
English
Article

author Fauzee M.H.M.; Suddin N.F.A.; Zailani N.A.M.; Nazir K.; Ismail S.N.S.; Zaini N.A.M.; Yahya S.; Latif F.A.
spellingShingle Fauzee M.H.M.; Suddin N.F.A.; Zailani N.A.M.; Nazir K.; Ismail S.N.S.; Zaini N.A.M.; Yahya S.; Latif F.A.
Impact of Choline Chloride/1,4-Butanediol Deep Eutectic Solvent on Tamarind Seed Polysaccharide-Based Polymer Electrolyte Films
author_facet Fauzee M.H.M.; Suddin N.F.A.; Zailani N.A.M.; Nazir K.; Ismail S.N.S.; Zaini N.A.M.; Yahya S.; Latif F.A.
author_sort Fauzee M.H.M.; Suddin N.F.A.; Zailani N.A.M.; Nazir K.; Ismail S.N.S.; Zaini N.A.M.; Yahya S.; Latif F.A.
title Impact of Choline Chloride/1,4-Butanediol Deep Eutectic Solvent on Tamarind Seed Polysaccharide-Based Polymer Electrolyte Films
title_short Impact of Choline Chloride/1,4-Butanediol Deep Eutectic Solvent on Tamarind Seed Polysaccharide-Based Polymer Electrolyte Films
title_full Impact of Choline Chloride/1,4-Butanediol Deep Eutectic Solvent on Tamarind Seed Polysaccharide-Based Polymer Electrolyte Films
title_fullStr Impact of Choline Chloride/1,4-Butanediol Deep Eutectic Solvent on Tamarind Seed Polysaccharide-Based Polymer Electrolyte Films
title_full_unstemmed Impact of Choline Chloride/1,4-Butanediol Deep Eutectic Solvent on Tamarind Seed Polysaccharide-Based Polymer Electrolyte Films
title_sort Impact of Choline Chloride/1,4-Butanediol Deep Eutectic Solvent on Tamarind Seed Polysaccharide-Based Polymer Electrolyte Films
publishDate 2024
container_title Malaysian Journal of Chemistry
container_volume 26
container_issue 4
doi_str_mv 10.55373/mjchem.v26i4.167
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85201703919&doi=10.55373%2fmjchem.v26i4.167&partnerID=40&md5=4da77a112efef11a881ffb37a0921342
description The presence of hydroxyl groups in polysaccharides results in brittle electrolyte films with poor ionic conductivity. The incorporation of traditional plasticizers like ethylene carbonate (EC) and propylene carbonate (PC) had effectively addressed the brittleness problem, but these plasticizers pose health risks. Thus, in this study, different weight percentages (%) (i.e., 0.2, 0.3, 0.4, 0.5, and 0.6 wt%) of choline chloride:1,4-butanediol (ChCl:1,4-BD), deep eutectic solvent (DES) with lower toxicity were incorporated into the tamarind seed polysaccharide (TSP) matrix. Then, the structural, electrical, morphological, and mechanical properties of the films obtained were evaluated. The polymer electrolyte films were prepared using the solution casting technique and a fixed amount of lithium triflate (LiTf) was added as the additional conducting species. A flexible and free-standing film of TSP-based electrolyte at the highest ionic conductivity of 2.30 x 10-4 S cm-1 was successfully obtained with the addition of 0.4 wt% of DES (TSPL 0.4). This was probably due to the successful prevention of hydrogen bonding as DES occupied the spaces between TSP chains. This could be further supported by the TSP-DES, TSP-LiTf, and salt-DES interactions as confirmed from Fourier transform infrared spectroscopy (FTIR) analyses. The smooth surface with no agglomeration due to salt and DES particles was observed for the optical micrograph of TSPL 0.4. This is due to the salt-DES interaction, which also contributes to the enhancement of the ionic conductivity of TSPL 0.4. The tensile test demonstrates the maximum tensile strain of 50.00% for TSPL 0.4, indicating the highest flexibility of the sample. © 2024 Malaysian Institute of Chemistry. All rights reserved.
publisher Malaysian Institute of Chemistry
issn 15112292
language English
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