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首页> 外文期刊>Journal of solid state electrochemistry >Eco-friendly biopolymer electrolyte, pectin with magnesium nitrate salt, for application in electrochemical devices
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Eco-friendly biopolymer electrolyte, pectin with magnesium nitrate salt, for application in electrochemical devices

机译:环保型生物聚合物电解质,果胶用硝酸镁盐,用于电化学装置的应用

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摘要

Current research on electrochemical device application focuses on the usage of biopolymers like chitosan, pectin, agar-agar, cellulose acetate, and carrageenan as the electrolyte. The present work deals with the study of an eco-friendly biopolymer electrolyte pectin with magnesium nitrate salt Mg(NO3)(2) prepared by solution casting technique. The prepared biopolymer electrolytes were characterized by X-ray diffraction (XRD), Fourier transform infrared (FTIR), differential scanning calorimetry (DSC), AC impedance analysis, and linear sweep voltammetry (LSV). XRD analysis has been used to confirm the amorphous nature of the biopolymer pectin and magnesium nitrate salt. FTIR analysis has been used to confirm the complex formation between the polymer and the salt. DSC analysis has been used to find the glass transition temperature (T-g) of the prepared biopolymer electrolytes. AC impedance analysis has been used to study the electrical characterization of the prepared biopolymer electrolytes. The biopolymer electrolyte 50M.wt% pectin:50M.wt% Mg(NO3)(2) has the highest ionic conductivity in the order of 10(-4) S cm(-1). The total ionic transference number of the highest conducting sample is 0.97 and the transference number of Mg2+ ion is 0.29. LSV has been used to find the electrochemical stability of the biopolymer electrolytes. The electrochemical stability of 50M.wt% pectin:50M.wt% Mg(NO3)(2) is 3.8V. This biopolymer electrolyte has been used to construct magnesium ion battery and the battery performance has been studied.
机译:电化学装置应用的目前研究侧重于壳聚糖,果胶,琼脂 - 琼脂,醋酸纤维素和角叉菜胶等生物聚合物的用法作为电解质。本作研究涉及通过溶液铸造技术制备的硝酸镁盐Mg(2)的环融合生物聚合物电解质果胶研究。制备的生物聚合物电解质的特征在于X射线衍射(XRD),傅里叶变换红外(FTIR),差示扫描量热法(DSC),AC阻抗分析和线性扫描伏安法(LSV)。 XRD分析已用于确认生物聚合物果胶和硝酸镁盐的无定形性质。 FTIR分析已被用于确认聚合物和盐之间的复杂形成。 DSC分析已用于找到制备的生物聚合物电解质的玻璃化转变温度(T-G)。 AC阻抗分析已被用于研究制备的生物聚合物电解质的电学表征。生物聚合物电解质50m.wt%果胶:50m .wt%mg(no 3)(2)的最高离子电导率为10(-4)scm(-1)。最高导电样品的总离子转移数为0.97,Mg2 +离子的转移数为0.29。 LSV已用于找到生物聚合物电解质的电化学稳定性。 50m.wt%果胶的电化学稳定性:50m.wt%mg(no3)(2)为3.8V。该生物聚合物电解质已用于构建镁离子电池,并研究了电池性能。

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