Результаты исследований: Научные публикации в периодических изданиях › статья › Рецензирование
Evaluation of crosslinked cellulose-based solid and gel polymer electrolytes in lithium-ion batteries. / Safavi-Mirmahalleh, S.-A.; N Eliseeva, S.; Rezvani-Moghaddam, A.; Roghani-Mamaqani, H.; Salami-Kalajahi, M.
в: International Journal of Biological Macromolecules, Том 327, 06.09.2025.Результаты исследований: Научные публикации в периодических изданиях › статья › Рецензирование
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TY - JOUR
T1 - Evaluation of crosslinked cellulose-based solid and gel polymer electrolytes in lithium-ion batteries
AU - Safavi-Mirmahalleh, S.-A.
AU - N Eliseeva, S.
AU - Rezvani-Moghaddam, A.
AU - Roghani-Mamaqani, H.
AU - Salami-Kalajahi, M.
N1 - Export Date: 01 November 2025; Cited By: 0; Correspondence Address: M. Salami-Kalajahi; Faculty of Polymer Engineering, Sahand University of Technology, Tabriz, P.O. Box 51335-1996, Iran; email: m.salami@sut.ac.ir; CODEN: IJBMD
PY - 2025/9/6
Y1 - 2025/9/6
N2 - In order to develop an alternate material for energy storage devices like batteries, this research is being done to create polymer electrolytes based on cellulose as natural polymer. Natural polymers as battery components have a number of advantages, including availability, biodegradability, unleakage, stable form, superior process, electrochemical stability, and low cost. In this study, polymer electrolytes based on cellulose have been synthesized by solution casting to prepare a thin polymer films. The solid or gel state of the polymer electrolyte and the kind of cross-linker (citric acid and polyvinyl alcohol) on the electrochemical properties of electrolyte have been investigated. Results showed that the crosslinking has improved ionic conductivity of solid and gel polymer electrolytes. Gel polymer electrolyte (GPE) cross-linked by 1 % citric acid exhibited higher ionic conductivities (up to 5.58 × 10−4 S cm−1 at room temperature) than other polymer electrolytes. The corresponding GPE presented a high lithium-ion transference number of 0.65, high electrochemical stability, and good specific capacity (212.41 mAh g−1 at 0.2C of LiCoO2/GPE-Ce-CA1/graphite). All these features prove that the GPE-Ce-CA1/graphite has great potential for the application of lithium-ion batteries. © 2025 Elsevier B.V., All rights reserved.
AB - In order to develop an alternate material for energy storage devices like batteries, this research is being done to create polymer electrolytes based on cellulose as natural polymer. Natural polymers as battery components have a number of advantages, including availability, biodegradability, unleakage, stable form, superior process, electrochemical stability, and low cost. In this study, polymer electrolytes based on cellulose have been synthesized by solution casting to prepare a thin polymer films. The solid or gel state of the polymer electrolyte and the kind of cross-linker (citric acid and polyvinyl alcohol) on the electrochemical properties of electrolyte have been investigated. Results showed that the crosslinking has improved ionic conductivity of solid and gel polymer electrolytes. Gel polymer electrolyte (GPE) cross-linked by 1 % citric acid exhibited higher ionic conductivities (up to 5.58 × 10−4 S cm−1 at room temperature) than other polymer electrolytes. The corresponding GPE presented a high lithium-ion transference number of 0.65, high electrochemical stability, and good specific capacity (212.41 mAh g−1 at 0.2C of LiCoO2/GPE-Ce-CA1/graphite). All these features prove that the GPE-Ce-CA1/graphite has great potential for the application of lithium-ion batteries. © 2025 Elsevier B.V., All rights reserved.
KW - Cellulose
KW - Citric acid
KW - Gel polymer electrolyte
KW - Lithium-ion battery
KW - Poly(vinyl alcohol)
KW - Solid polymer electrolyte
KW - Cerium compounds
KW - Crosslinking
KW - Ionic conduction in solids
KW - Ionic conductivity
KW - Ions
KW - Lithium compounds
KW - Solid electrolytes
KW - Thin film lithium ion batteries
KW - Virtual storage
KW - Electrochemical stabilities
KW - Gel polymer electrolytes
KW - Ion batteries
KW - Lithium ions
KW - Poly (vinyl alcohol) (PVA)
KW - Poly(vinyl alcohol) (PVA)
KW - Polymer electrolyte
KW - Solid polymer electrolytes
KW - cellulose
KW - citric acid
KW - electrolyte
KW - gel
KW - lithium ion
KW - polymer
KW - ion
KW - lithium
KW - Article
KW - biodegradability
KW - chronoamperometry
KW - cross linking
KW - crystal structure
KW - cyclic voltammetry
KW - electrochemical analysis
KW - esterification
KW - field emission scanning electron microscopy
KW - hydrogen bond
KW - impedance
KW - polarization
KW - temperature
KW - thermogravimetry
KW - water absorption
KW - X ray diffraction
KW - chemistry
KW - electric conductivity
KW - power supply
KW - Cerium Compounds
KW - Citric Acid
KW - Electrolytes
KW - Gels
KW - Lithium Compounds
KW - Solids
KW - Electric Conductivity
KW - Electric Power Supplies
KW - Lithium
KW - Polymers
UR - https://www.mendeley.com/catalogue/73ad2b09-065f-3eba-9992-8303c8c7725a/
U2 - 10.1016/j.ijbiomac.2025.147508
DO - 10.1016/j.ijbiomac.2025.147508
M3 - Article
VL - 327
JO - International Journal of Biological Macromolecules
JF - International Journal of Biological Macromolecules
SN - 0141-8130
ER -
ID: 143731428