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Electrical Conduction Mechanism and Dielectric Properties of Spherical Shaped Fe3O4 Nanoparticles Synthesized by Co-Precipitation Method

机译:共沉淀法合成球形Fe3O4纳米粒子的导电机理和介电性能

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摘要

On the basis of dielectric measurements performed in a wide temperature range (173–373 K), a comprehensive analysis of the dielectric and electrical properties of magnetite nanoparticles electrical conduction mechanism of compressed spherical shaped Fe3O4 nanoparticles was proposed. The electrical conductivity of Fe3O4 nanoparticles was related to two different mechanisms (correlated barrier hopping and non-overlapping small polaron tunneling mechanisms); the transition between them was smooth. Additionally, role of grains and grain boundaries with charge carrier mobility and with observed hopping mechanism was described in detail. It has been confirmed that conductivity dispersion (as a function of frequencies) is closely related to both the long-range mobility (conduction mechanism associated with grain boundaries) and to the short-range mobility (conduction mechanism associated with grains). Calculated electron mobility increases with temperature, which is related to the decreasing value of hopping energy for the tunneling of small polarons. The opposite scenario was observed for the value of electron hopping energy.
机译:基于在较宽的温度范围(173–373 K)内进行的介电测量,提出了对压缩球形Fe3O4纳米粒子的磁铁矿纳米粒子导电机理的综合分析。 Fe3O4纳米粒子的电导率与两种不同的机理有关(相关的势垒跳跃和非重叠的小极化子隧穿机理);他们之间的过渡很顺利。另外,详细描述了晶粒和晶界在电荷载流子迁移率和所观察到的跳跃机制中的作用。已经证实,电导率色散(作为频率的函数)与长程迁移率(与晶界相关的传导机制)和短程迁移率(与晶粒相关的传导机制)都密切相关。计算得出的电子迁移率随温度的升高而增加,这与小极化子隧穿的跳跃能的减小值有关。对于电子跳跃能量的值,观察到相反的情况。

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