首页> 美国卫生研究院文献>Polymers >Role of Ion Dissociation on DC Conductivity and Silver Nanoparticle Formation in PVA:AgNt Based Polymer Electrolytes: Deep Insights to Ion Transport Mechanism
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Role of Ion Dissociation on DC Conductivity and Silver Nanoparticle Formation in PVA:AgNt Based Polymer Electrolytes: Deep Insights to Ion Transport Mechanism

机译:离子离解在基于PVA:AgNt的聚合物电解质中直流电导率和银纳米颗粒形成中的作用:对离子传输机理的深刻见解

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摘要

In this study, the role of ion dissociation on formation of silver nanoparticle and DC conductivityin PVA:AgNO3 based solid polymer electrolyte has been discussed in detail. Samples of silver ion conducting solid polymer electrolyte were prepared by using solution cast technique. Absorption spectroscopy in the ultraviolet–visible (UV–Vis) spectral region was used to investigate the formation of silver nanoparticles. Broad and sharp peaks due to plasmonic silver nanoparticles subjected to ion dissociation have been observed. The influence of dielectric constant on the intensity of surface plasmonic resonance (SPR) peaks attributed to silver nanoparticles was discussed. From impedance plots, the diameter of high frequency semicircle was found to be decreased with increasing salt concentration. The DC conductivity in relation to the dielectric constant was also explained. From the AC conductivity spectra, the dc conductivity was estimated to be close to that calculated from the bulk resistance. The temperature dependence of the DC conductivity was studied and found to follow Arrhenius equation within two distinguished regions. The AC conductivity at different temperatures has been studied to comprehend the ion conduction mechanism. The AC conductivity against frequency was found to obey the universal power law of Jonscher. Three distinct regions were recognized from the spectra of AC conductivity. The frequency exponent (S) was calculated for the dispersive region of the measured AC conductivity spectra. Various models were discussed to explain the behavior of S value with temperature. The behavior of S value with temperature was then used to interpret the DC conductivity pattern against 1000/T. Finally, from the comparison of calculated activation energy (Ea) and maximum barrier height (Wm), deep insights into ion conduction mechanism could be grasped.
机译:在这项研究中,已详细讨论了离子解离对PVA:AgNO3基固体聚合物电解质中银纳米颗粒形成和DC电导率的作用。通过使用溶液流延技术制备了银离子导电固体聚合物电解质样品。紫外-可见(UV-Vis)光谱区域的吸收光谱用于研究银纳米颗粒的形成。观察到由于等离子体离解的银纳米颗粒导致的宽峰和尖峰。讨论了介电常数对归因于银纳米粒子的表面等离子体共振(SPR)峰强度的影响。从阻抗图可以发现,随着盐浓度的增加,高频半圆的直径减小。还解释了与介电常数有关的直流电导率。根据交流电导率谱,估计直流电导率接近于由体电阻计算得出的电导率。对直流电导率的温度依赖性进行了研究,发现其在两个显着区域内遵循Arrhenius方程。研究了不同温度下的交流电导率,以了解其离子传导机理。发现交流电导率相对于频率符合Jonscher的通用功率定律。从交流电导率的光谱中识别出三个不同的区域。计算出所测得的交流电导率频谱的色散区域的频率指数(S)。讨论了各种模型来解释S值随温度的变化。然后使用S值随温度的变化来解释1000 / T的直流电导率模式。最后,通过比较计算出的活化能(Ea)和最大势垒高度(Wm),可以深入了解离子传导机理。

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