论文标题

金属纳米颗粒的单层电荷运输

Charge transport in monolayers of metal nanoparticles

论文作者

Zhang, Lianhua, Chen, Jian, Liu, Fei, Du, Zhengyang, Jiang, Yilun, Han, Min, Wang, Guanghou

论文摘要

二维(2D)纳米颗粒膜是一类新的材料,具有有趣的物理特性和从纳米电子学到传感和光子学的应用。进行纳米颗粒膜的重要性使得对其电荷运输的基本了解对于材料和过程设计极为重要。已经提出了各种跳跃和运输机制,纳米颗粒单层与电气等效的RC电路一致,但是它们的理论方法仅限于在电容性耦合纳米粒子之间与特征性时间恒定RC的单个电子隧穿的模型,而薄膜的电导率则是实验性电导率的,这些模型是这些模型的专用模型。还不清楚电子转盘的特定过程如何受温度的影响。因此,如今无法从根本上理解薄膜的电子动力学。在这里,我们基于蒙特卡洛模拟支持的Sommerfeld模型发展了一个分析理论,该理论预测了电荷传输过程以及温度对薄膜中电子传输的影响。在本文中,建立了两种不同的纳米颗粒模型,以应对不同类型的形态:三角形阵列和矩形阵列。在不同温度下研究了这些不同类型的阵列的运输特性,包括有/没有局部结构障碍和2D梯度纳米颗粒阵列的2D有序的纳米颗粒阵列。对于没有局部结构障碍的2D良好的纳米颗粒阵列,I-V曲线是非线性的,高度对称。

Two-dimensional (2D) nanoparticle films are a new class of materials with interesting physical properties and applications ranging from nanoelectronics to sensing and photonics. The importance of conducting nanoparticle films makes the fundamental understanding of their charge transport extremely important for materials and process design. Various hopping and transport mechanisms have been proposed and the nanoparticle monolayer is consistent with the electrical equivalent RC circuit, but their theoretical methods are limited to the model of the single electron tunneling between capacitively coupled nanoparticles with a characteristic time constant RC and the conductivity of thin film is the experimental conductivity, which cannot be deduced from these theoretical models. It is also unclear that how the specific process of electron transpot is affected by temperature. So, nowadays the electron dynamics of thin film cannot be understood fundamentally. Here, we develop an analytical theory based on the model of Sommerfeld, backed up by Monte-Carlo simulations, that predicts the process of charge transport and the effect of temperature on the electron transport in the thin film. In this paper two different nanoparticle models were built to cope with different types of morphology: triangular array and rectangular array. The transport properties of these different kinds of arrays including 2D ordered nanoparticle arrays with/without local structural disorder and 2D gradient nanoparticle arrays were investigated at different temperatures. For 2D well-ordered nanoparticle array without local structural disorder, the I-V curves are non-linear and highly symmetric.

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