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Dimensionality-dependent charge transport in close-packed nanoparticle arrays: from 2D to 3D

机译:紧密堆积的纳米粒子阵列中与尺寸有关的电荷传输:从2D到3D

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摘要

Charge transport properties in close-packed nanoparticle arrays with thickness crossing over from two dimensions to three dimensions have been studied. The dimensionality transition of nanoparticle arrays was realized by continually printing spatially well-defined nanoparticle monolayers on top of the device in situ. The evolution of charge transport properties depending on the dimensionality has been investigated in both the Efros-Shaklovskii variable-range-hopping (ES-VRH) (low temperature) regime and the sequential hopping (SH) (medium temperature) regime. We find that the energy barriers to transport decrease when the thickness of nanoparticle arrays increases from monolayer to multilayers, but start to level off at the thickness of 4–5 monolayers. The energy barriers are characterized by the coefficient βD at ES-VRH regime and the activation energy Ea at SH regime. Moreover, a turning point for the temperature coefficient of conductance was observed in multilayer nanoparticle arrays at high temperature, which is attributed to the increasing mobility with decreasing temperature of hopping transport in three dimensions.
机译:研究了厚度从二维到三维的紧密堆积纳米颗粒阵列中的电荷传输特性。纳米粒子阵列的尺寸转变是通过在设备顶部连续连续印刷空间明确定义的纳米粒子单层实现的。在Efros-Shaklovskii可变范围跳跃(ES-VRH)(低温)方案和顺序跳跃(SH)(中温)方案中,都研究了取决于尺寸的电荷传输性质的演变。我们发现,当纳米颗粒阵列的厚度从单层增加到多层时,传输的能垒降低,但在4-5个单层的厚度处开始趋于平稳。能垒的特征在于ES-VRH状态下的系数β D 和SH状态下的活化能E a 。此外,在高温下在多层纳米颗粒阵列中观察到电导温度系数的转折点,这归因于在三个维度上随着跳变传输温度的降低迁移率增加。

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