Biomaterials and Tissue Engineering Research Group, Department of Interdisciplinary Technologies, Breast Cancer Research Center, Motamed Cancer Institute, ACECR, Tehran, Iran.
Department of Mechanical Engineering (BK21 Four), College of Engineering, Kyung Hee University, Yongin, Republic of Korea.
Sci Rep. 2023 Jan 2;13(1):5. doi: 10.1038/s41598-022-25548-w.
A simple model is developed for the conductivity of polymeric systems including silver nanowires (AgNWs). This model reveals the effects of interphase thickness, tunneling distance, waviness and aspect ratio of nanowires, as well as effective filler volume fraction on the percolation and electrical conductivity of AgNW-reinforced samples. The validity of this model is tested by using the measured data from several samples. Based on this model, the conductivity calculations are in proper accordance with the measured values. A large network and a low percolation onset are produced by nanowires with a high aspect ratio developing the nanocomposite conductivity. The results also show that a thicker interphase expands the network, thereby increasing the electrical conductivity. Furthermore, non-waved AgNWs exhibit more conductivity compared to wavy nanowires. It is concluded that the surface energies of polymer medium and nanowires have no effect on the conductivity of samples. On the other hand, the volume fraction and aspect ratio of nanowires, in addition to the interphase thickness and tunneling distance have the greatest influences on the conductivity of nanocomposites.
建立了一个简单的模型来描述包括银纳米线(AgNWs)在内的聚合物系统的电导率。该模型揭示了相间厚度、隧道距离、纳米线的波纹度和纵横比以及有效填料体积分数对 AgNW 增强样品的渗流和电导率的影响。通过使用来自几个样品的测量数据来验证该模型的有效性。基于该模型,电导率的计算与测量值相符。高纵横比的纳米线形成了大的网络,降低了渗流起始值,从而提高了纳米复合材料的电导率。结果还表明,较厚的相间扩展了网络,从而提高了电导率。此外,与波纹纳米线相比,无波纹 AgNW 表现出更高的电导率。研究结果表明,聚合物介质和纳米线的表面能对样品的电导率没有影响。另一方面,纳米线的体积分数和纵横比以及相间厚度和隧道距离对纳米复合材料的电导率影响最大。