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Conductivity and electrical studies of plasticized carboxymethyl cellulose based proton conducting solid biopolymer electrolytes

机译:增塑的羧甲基纤维素基质子传导固体生物聚合物电解质的电导率和电学研究

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In this paper, a proton conducting solid biopolymer electrolytes (SBE) comprises of carboxymethyl cellulose (CMC) as polymer host, ammonium thiocyanate (NH_4SCN) as doping salt and ethylene carbonate (EC) as plasticizer has been prepared via solution casting technique. Electrical Impedance Spectroscopy (EIS) was carried out to study the conductivity and electrical properties of plasticized CMC-NH_4SCN SBE system over a wide range of frequency between 50 Hz and 1 MHz at temperature range of 303 to 353 K. Upon addition of plasticizer into CMC-NH_4SCN SBE system, the conductivity increased from 10~(-5) to 10~(-2) Scm~(-1). The highest conductivity was obtained by the electrolyte containing 10 wt.% of EC. The conductivity of plasticized CMC-NH_4SCN SBE system by various temperatures obeyed Arrhenius law where the ionic conductivity increased as the temperature increased. The activation energy, E_a was found to decrease with enhancement of EC concentration. Dielectric studies for the highest conductivity electrolyte obeyed non-Debye behavior. The conduction mechanism for the highest conductivity electrolyte was determined by employing Jonsher's universal power law and thus, can be represented by the quantum mechanical tunneling (QMT) model.
机译:本文通过溶液流延技术制备了一种质子传导性固体生物聚合物电解质(SBE),其中羧甲基纤维素(CMC)为聚合物主体,硫氰酸铵(NH_4SCN)为掺杂盐,碳酸亚乙酯(EC)为增塑剂。进行了电阻抗谱(EIS),以研究增塑剂CMC-NH_4SCN SBE系统在303至353 K的温度范围内,50 Hz至1 MHz的宽频率范围内的电导率和电性能。 -NH_4SCN SBE体系,电导率从10〜(-5)Scm〜(-1)增加到10〜(-2)Scm〜(-1)。通过包含10重量%EC的电解质获得最高的电导率。增塑的CMC-NH_4SCN SBE系统在各种温度下的电导率均遵循阿伦尼乌斯定律,其中离子电导率随温度升高而增加。发现活化能E_a随着EC浓度的增加而降低。最高导电性电解质​​的介电研究遵循非德拜行为。电导率最高的电解质的传导机制是通过采用琼斯的通用幂定律确定的,因此可以用量子力学隧穿(QMT)模型来表示。

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