Khodaee M, Dalir N, Feghhi F, Ansari N, Mohammadimasoudi M, Goudarzi A, Nasiri A F, Kolahdouz M, Mohseni S M
School of Electrical and Computer Engineering, College of Engineering, University of Tehran, Tehran, 1439957131, Iran.
Department of Renewable Energy, Interdisciplinary Science and Technology, Tarbiat Modares University, Tehran, 14115-175, Iran.
Sci Rep. 2023 Jul 19;13(1):11688. doi: 10.1038/s41598-023-38157-y.
Enhancing the electrical conductivity of liquid crystal (LC) circumvents challenges for application in advanced electronic components. Toward this, using additives made of different nanostructures that could result in functional LCs is suggested. In this paper, various concentrations of graphene (Gr)/metal-oxide (FeO) nanocomposite (GMN) (0.0001-1 w%) were added to E7 nematic LC. We found that the role of anisotropic Gr flakes, their edges as well as surface-decorated-metal-oxide-additives have significant impact on electrical properties of E7. A range of appropriate additives of such a nanocomposite enhances the electrical conductivity of LCs. This effect can be traced through the decrease in the formation of GMN aggregates in the E7 and increase in the electrostatic field at the edges of the Gr sheets. Moreover, the presence of metal-oxide nanoclusters due to the presence of oxygen vacancies and defects facilitates the construction of conductive network for improving the charge transfer pathways and contributes to a stronger interaction of the Gr surface with charged species. These factors can provide Gr layers as dipole moments and lead to signal propagation in the dielectric medium. Our finding conveys a pathway toward significant enhancement of electrical conductivity in the LC family which can be useful for functional applications.
提高液晶(LC)的电导率可规避其在先进电子元件应用中的挑战。为此,有人建议使用由不同纳米结构制成的添加剂,这些添加剂可形成功能性液晶。在本文中,将不同浓度(0.0001 - 1重量%)的石墨烯(Gr)/金属氧化物(FeO)纳米复合材料(GMN)添加到E7向列型液晶中。我们发现,各向异性的Gr薄片、其边缘以及表面修饰的金属氧化物添加剂对E7的电学性质有显著影响。一系列合适的此类纳米复合材料添加剂可提高液晶的电导率。这种效应可通过E7中GMN聚集体形成的减少以及Gr片边缘静电场的增加来追踪。此外,由于氧空位和缺陷的存在而形成的金属氧化物纳米团簇有助于构建导电网络,以改善电荷转移路径,并有助于Gr表面与带电物种之间形成更强的相互作用。这些因素可使Gr层具有偶极矩,并导致在介电介质中信号传播。我们的发现为显著提高液晶家族的电导率提供了一条途径,这对功能性应用可能有用。