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Preparation and characterization of nanofibrous cellulose as solid polymer electrolyte for lithium-ion battery applications

A novel bacterial cellulose (BC)-based nanofiber material has been utilized as an ionic template for the battery system solid polymer electrolyte (SPE). The effect of drying techniques such as oven and freeze-drying on the gel-like material indicate differences in both visual and porous structures....

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Autores principales: Sabrina, Qolby, Ratri, Christin Rina, Hardiansyah, Andri, Lestariningsih, Titik, Subhan, Achmad, Rifai, Abdulloh, Yudianti, Rike, Uyama, Hiroshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9034343/
https://www.ncbi.nlm.nih.gov/pubmed/35480471
http://dx.doi.org/10.1039/d1ra03480d
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author Sabrina, Qolby
Ratri, Christin Rina
Hardiansyah, Andri
Lestariningsih, Titik
Subhan, Achmad
Rifai, Abdulloh
Yudianti, Rike
Uyama, Hiroshi
author_facet Sabrina, Qolby
Ratri, Christin Rina
Hardiansyah, Andri
Lestariningsih, Titik
Subhan, Achmad
Rifai, Abdulloh
Yudianti, Rike
Uyama, Hiroshi
author_sort Sabrina, Qolby
collection PubMed
description A novel bacterial cellulose (BC)-based nanofiber material has been utilized as an ionic template for the battery system solid polymer electrolyte (SPE). The effect of drying techniques such as oven and freeze-drying on the gel-like material indicate differences in both visual and porous structures. The morphological structure of BC after oven and freeze-drying observed by field-emission scanning electron microscopy indicates that a more compact porous structure is found in freeze-dried BC than oven-dried BC. After the BC-based nanofiber immersion process into lithium hexafluorophosphate solution (1.0 M), the porous structure becomes a host for Li-ions, demonstrated by significant interactions between Li-ions from the salt and the C[double bond, length as m-dash]O groups of freeze-dried BC as shown in the infrared spectra. X-ray diffraction analysis of freeze-dried BC after immersion in electrolyte solution shows a lower degree of crystallinity, thus allowing an increase in Li-ion movement. As a result, freeze-dried BC has a better ionic conductivity of 2.71 × 10(−2) S cm(−1) than oven-dried BC, 6.00 × 10(−3) S cm(−1). Freeze-dried BC as SPE also shows a larger electrochemical stability window around 3.5 V, reversible oxidation/reduction peaks at 3.29/3.64 V, and an initial capacity of 18 mAHr g(−1) at 0.2C. The high tensile strength of the freeze-dried BC membrane of 334 MPa with thermal stability up to 250 °C indicates the potential usage of freeze-dried BC as flexible SPE to dampen ionic leakage transfer.
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spelling pubmed-90343432022-04-26 Preparation and characterization of nanofibrous cellulose as solid polymer electrolyte for lithium-ion battery applications Sabrina, Qolby Ratri, Christin Rina Hardiansyah, Andri Lestariningsih, Titik Subhan, Achmad Rifai, Abdulloh Yudianti, Rike Uyama, Hiroshi RSC Adv Chemistry A novel bacterial cellulose (BC)-based nanofiber material has been utilized as an ionic template for the battery system solid polymer electrolyte (SPE). The effect of drying techniques such as oven and freeze-drying on the gel-like material indicate differences in both visual and porous structures. The morphological structure of BC after oven and freeze-drying observed by field-emission scanning electron microscopy indicates that a more compact porous structure is found in freeze-dried BC than oven-dried BC. After the BC-based nanofiber immersion process into lithium hexafluorophosphate solution (1.0 M), the porous structure becomes a host for Li-ions, demonstrated by significant interactions between Li-ions from the salt and the C[double bond, length as m-dash]O groups of freeze-dried BC as shown in the infrared spectra. X-ray diffraction analysis of freeze-dried BC after immersion in electrolyte solution shows a lower degree of crystallinity, thus allowing an increase in Li-ion movement. As a result, freeze-dried BC has a better ionic conductivity of 2.71 × 10(−2) S cm(−1) than oven-dried BC, 6.00 × 10(−3) S cm(−1). Freeze-dried BC as SPE also shows a larger electrochemical stability window around 3.5 V, reversible oxidation/reduction peaks at 3.29/3.64 V, and an initial capacity of 18 mAHr g(−1) at 0.2C. The high tensile strength of the freeze-dried BC membrane of 334 MPa with thermal stability up to 250 °C indicates the potential usage of freeze-dried BC as flexible SPE to dampen ionic leakage transfer. The Royal Society of Chemistry 2021-06-29 /pmc/articles/PMC9034343/ /pubmed/35480471 http://dx.doi.org/10.1039/d1ra03480d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Sabrina, Qolby
Ratri, Christin Rina
Hardiansyah, Andri
Lestariningsih, Titik
Subhan, Achmad
Rifai, Abdulloh
Yudianti, Rike
Uyama, Hiroshi
Preparation and characterization of nanofibrous cellulose as solid polymer electrolyte for lithium-ion battery applications
title Preparation and characterization of nanofibrous cellulose as solid polymer electrolyte for lithium-ion battery applications
title_full Preparation and characterization of nanofibrous cellulose as solid polymer electrolyte for lithium-ion battery applications
title_fullStr Preparation and characterization of nanofibrous cellulose as solid polymer electrolyte for lithium-ion battery applications
title_full_unstemmed Preparation and characterization of nanofibrous cellulose as solid polymer electrolyte for lithium-ion battery applications
title_short Preparation and characterization of nanofibrous cellulose as solid polymer electrolyte for lithium-ion battery applications
title_sort preparation and characterization of nanofibrous cellulose as solid polymer electrolyte for lithium-ion battery applications
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9034343/
https://www.ncbi.nlm.nih.gov/pubmed/35480471
http://dx.doi.org/10.1039/d1ra03480d
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