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Alternative current conduction mechanisms of organic-inorganic compound [N(CH3)3H]2CuCl4

机译:有机-无机化合物[N(CH3)3H] 2CuCl4的交替电流传导机理

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The [N(CH3)3H]2CuCl4 single crystal has been analyzed by X-ray powder diffraction patterns, differential scanning calorimetry (DSC), and electrical impedance spectroscopy. [N(CH3)3H]2CuCl4 crystallizes at room temperature in the monoclinic system with P21/C space group. Three phase transitions at T1 = 226 K, T2 = 264 K, and T3 = 297 K have been evidenced by DSC measurements. The electrical technique was measured in the 10−1–107 Hz frequency range and 203–313 K temperature intervals. The frequency dependence of alternative current (AC) conductivity is interpreted in terms of Jonscher's law (developed). The AC electrical conduction in [N(CH3)3H]2CuCl4 compound is studied by two processes which can be attributed to a hopping transport mechanism: the correlated barrier hopping model in phases I, II, and III, the non-overlapping small polaron tunneling model in phase IV. The conduction mechanism is interpreted with the help of Elliot's theory, and the Elliot's parameters are found.
机译:[N(CH3)3H] 2CuCl4单晶已通过X射线粉末衍射图谱,差示扫描量热法(DSC)和电阻抗光谱法进行了分析。 [N(CH3)3H] 2CuCl4在室温下以P21 / C空间群的单斜晶系结晶。通过DSC测量可以证明在T1 = 226 K,T2 = 264 K和T3 = 297 K时出现了三个相变。在10 −1 –10 7 Hz频率范围和203–313 K温度间隔内测量电气技术。交流电(AC)电导率的频率相关性根据琼斯定律(已开发)进行解释。通过以下两个过程研究了[N(CH3)3H] 2CuCl4化合物中的交流电,这可以归因于跳跃传输机制:第一,第二和第三阶段的相关势垒跳跃模型,非重叠小极化子隧穿第四阶段的模型。借助艾略特的理论解释了传导机制,并找到了艾略特的参数。

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