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Bifunctional ionic liquid in conductive biopolymer based on chitosan for electrochemical devices application

机译:基于壳聚糖的导电生物聚合物中的双功能离子液体在电化学装置中的应用

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摘要

Conductive polymer based on chitosan has been successfully prepared via solution casting technique with ionic liquid 1-butyl-3-methylimidazolium acetate ([Bmim][OAc]). [Bmim][OAc] plays two important roles in the conduction of chitosan: i) charge carrier and ii) plasticizer in this system. Appearance of new peaks and shifting of several characteristic peaks in the FTIR spectra signify the strong interactions between chitosan and [Bmim][OAc]. XRD diffractograms showed an increase in the amorphous region as the weight percentage (wt.%) of [Bmim][OAc] increases. SEM observations have proven the smoother surface morphology of the plasticized chitosan. The enhancement in the ionic conductivity (a), is observed as the wt.% of [Bmim][OAc] increases. The highest a-achieved is (2.44 +/- 0.41) x 10(-3) S cm(-1) measured at ambient temperature (298 K) and the corresponding activation energy is 0.2961 eV. The temperature dependence of conductivity is An-henian in the studied temperature range and achieved sigma of (7.60 +/- 0.62) x 10(-3) S cm(-1) at 70 degrees C. The increase in the ionic conductivity is related to the decrease of glass transition temperature (TO as proven by the DSC analysis. High electrochemical stability of 3.4 V was achieved of the highest conducting electrolyte by means of linear sweep voltammetry (LSV). Transference number measurement confirms that ions predominate the conduction of electrolyte with 0.75 ion transference number. (C) 2015 Elsevier B.V. All rights reserved.
机译:通过溶液浇铸技术,用离子液体乙酸1-丁基-3-甲基咪唑鎓乙酸盐([Bmim] [OAc])成功制备了基于壳聚糖的导电聚合物。 [Bmim] [OAc]在壳聚糖的传导中起两个重要作用:i)电荷载体和ii)在该系统中的增塑剂。 FTIR光谱中新峰的出现和几个特征峰的移动表明壳聚糖与[Bmim] [OAc]之间有很强的相互作用。 XRD衍射图显示,随着[Bmim] [OAc]的重量百分比(wt。%)增加,非晶区增加。 SEM观察已证明增塑壳聚糖的表面形态更光滑。随着[Bmim] [OAc]的重量%增加,观察到离子电导率(a)的增加。在环境温度(298 K)下测得的最高a为(2.44 +/- 0.41)x 10(-3)S cm(-1),相应的活化能为0.2961 eV。电导率的温度依赖性在所研究的温度范围内为安-安尼安,在70摄氏度下达到(7.60 +/- 0.62)x 10(-3)S cm(-1)的sigma。离子电导率的增加与到玻璃化转变温度的降低(通过DSC分析证明为TO。通过线性扫描伏安法(LSV)获得的最高导电电解质达到3.4 V的高电化学稳定性。转移数的测量证实了离子占主导地位(0.75)离子转移数(C)2015 Elsevier BV保留所有权利。

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