高氯酸锂
复合数
电解质
锂(药物)
电化学
固态
材料科学
快离子导体
化学工程
无机化学
化学
复合材料
电极
内科学
工程类
医学
物理化学
作者
Izuan Nasib,Muhammad Remanul Islam,Maryam Firouzi,Ahmad Naim Ahmad Yahaya,Sairul Izwan Safie,Sam Toan
标识
DOI:10.1177/0958305x251349483
摘要
Composite-based polymer electrolytes have attracted considerable attention due to their high ionic conductivity and excellent electrochemical performance in energy storage applications. This study explores the influence of Lithium Perchlorate (LiClO 4 ) loading on the electrochemical performance of composite-based solid-state electrolytes (SSEs) based on a composite of poly(vinylidene fluoride-co-hexafluoropropylene) (PVDF-HFP) and 20% cellulose acetate (CA), referred to as PVDF-HFP/20%CA. Utilizing a solution casting method, four SSE samples were fabricated: a control (0% LiClO 4 ) and three samples with varying LiClO 4 concentrations (5%, 10%, and 15%). Comprehensive characterizations, including scanning electron microscopy (SEM), Fourier-transform infrared (FTIR), physical characterization, and electrochemical impedance spectroscopy (EIS) were conducted to assess the impact of LiClO 4 on the composites. The Nyquist plot and DC ionic conductivity analysis further validate the superior performance of PH20CA-15Li (PVDF-HFP/20% cellulose acetate with 15% LiClO 4 ), with ionic conductivity increasing from 1.15 × 10 −6 S cm −1 for the control sample to 3.7 × 10 −6 S cm −1 . Loss Tangent and Cyclic Voltammetry analyses underscore the dynamic electrochemical behavior and stability of PH20CA-15Li, with the voltage window expanding from 0.996 V in the control sample to 1.398 V, highlighting its enhanced dielectric properties and energy storage capabilities. Electrolyte uptake and porosity analyses reveal a decrease in both parameters with increased LiClO 4 content, suggesting a trade-off between electrochemical performance and physical properties. SEM and FTIR analyses show structural and chemical changes, confirming the interaction between LiClO 4 and the composite matrix. The study concludes that 15% LiClO 4 loading optimally balances conductivity with physical properties, making it a promising candidate for advanced solid-state electrolyte applications.
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