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Magnesium Ion-Conducting Biopolymer Electrolytes Based on Carboxymethyl Cellulose Derived from Palm Oil Empty Fruit Bunch Fibre

机译:基于羧甲基纤维素的镁离子导电生物聚合物电解质衍生自棕榈油空果脯束纤维

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As demands for global lithium supplies have raised questions about the sustainability of the supply of lithium, a potential alternative to lithium batteries has been developed. New biodegradablecarboxymethyl cellulose (CMC) extracted from empty fruit bunches of palm oil is used to produce biopolymer electrolytes (BPE) using magnesium acetate salt. Solution casting has been used to prepare biopolymer electrolytes in various ratios of magnesium acetate. Via Fourier transform infrared characterisation, electrochemical impedance spectroscopy, transference number measurements and linear sweep voltammetry, studies on the structural, electrical and electrochemical behaviour of CMC were conducted. Upon the addition of 20 wt% of magnesium acetate, the highest ionic conductivity of 1.83 × 10?3 S cm?1 at ambient temperature was achieved. The interactions between CMC and magnesium acetate were verified by the Fourier transform infrared results. Electrochemical stability of more than 2 V was shown by the biosourced polymer electrolytes, whereas the measurement of transference number showed that electrolytic conduction was dominated by ions.
机译:随着对全球锂电片供应的需求提出了关于锂供应供应的可持续性的问题,已经开发了锂电池的潜在替代品。从空果束棕榈油中提取的新生物霉菌羧甲基纤维素(CMC)用于使用乙酸镁盐产生生物聚合物电解质(BPE)。溶液铸造已用于制备各种乙酸镁的生物聚合物电解质。通过傅里叶变换红外表征,电化学阻抗光谱,转移数测量和线性扫描伏安法,进行了CMC结构,电气和电化学行为的研究。在加入20wt%的乙酸镁后,实现了在环境温度下的1.83×10·3 s cm 2的最高离子电导率。通过傅里叶变换红外结果验证了CMC和醋酸镁之间的相互作用。通过生物沉淀的聚合物电解质示出了大于2V以上的电化学稳定性,而转移数的测量表明,电解传导由离子支配。

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