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利用电场辅助毛细管通道法实现大面积二氧化硅纳米棒薄膜的定向组装

Directional Assembly of Large-Area Silica Nanorod Film Using the Electric-Field-Assisted Capillary Channel Method.

作者信息

Wei Chenhui, Li Caixia, Dou Zhengkang, Fu Ming, Liu Xiaoyu, He Dawei, Wang Yongsheng

机构信息

Key Laboratory of Luminescence and Optical Information, Ministry of Education, Institute of Optoelectronic Technology, Beijing Jiaotong University, Beijing 100044, P. R. China.

出版信息

Langmuir. 2023 Aug 22;39(33):11819-11827. doi: 10.1021/acs.langmuir.3c01561. Epub 2023 Aug 9.

Abstract

The self-assembly of colloidal particles, especially colloidal particles with anisotropic geometry, is important for applications in the construction of many functional materials. Compared with the self-assembly of colloidal particles with isotropic geometries, not only does the geometric orientation among neighboring anisotropic particles need to be considered for the reduction of Gibbs free energy, the orientations of the particles are best to be externally influenced. Because of this, the preparation of assembled nanorod arrays with uniform alignment across a large area is still a significant challenge. In this work, an electric-field-assisted capillary channel method is reported, using an external electric field to influence the orientation of silica nanorods or FeOOH ellipsoids during assembly. By application of an external electric field, the alignment of the nanorods is effectively controlled. The capillary channel method provides continuous replenishment of a colloidal solution containing nanorods or spheres for assembly of large-area films. The area of the formed films was influenced by the assembly temperature, channel width, colloidal solution concentration, and solvent surface tension. The competition between the thermal Brownian motion and torque generated by the external electric field impacted the nanorod array quality in the film. While increasing the intensity of the electric field improved nanorod alignment, applying a potential greater than 6 V also produced a heating effect, negatively affecting the quality of the nanorod arrays. The nematic order parameter which characterizes the degree of alignment of FeOOH ellipsoids with smaller length is significantly lower than the one for silica nanorods due to the higher critical field strength and the increased susceptibility to the effects of thermal motion. The assembly of silica nanorods at 35 °C under an effective potential of 4-6 V provides a compromise between achieving uniform nanorod orientation and maximizing the coverage area of the colloidal film.

摘要

胶体颗粒的自组装,尤其是具有各向异性几何形状的胶体颗粒的自组装,对于许多功能材料的构建应用而言至关重要。与具有各向同性几何形状的胶体颗粒的自组装相比,为了降低吉布斯自由能,不仅需要考虑相邻各向异性颗粒之间的几何取向,颗粒的取向最好受到外部影响。因此,制备大面积均匀排列的组装纳米棒阵列仍然是一项重大挑战。在这项工作中,报道了一种电场辅助毛细管通道方法,该方法在组装过程中使用外部电场来影响二氧化硅纳米棒或氢氧化铁氧体椭球体的取向。通过施加外部电场,纳米棒的排列得到有效控制。毛细管通道方法为包含纳米棒或球体的胶体溶液提供连续补充,以用于大面积薄膜的组装。所形成薄膜的面积受到组装温度、通道宽度、胶体溶液浓度和溶剂表面张力的影响。热布朗运动与外部电场产生的扭矩之间的竞争影响了薄膜中纳米棒阵列的质量。虽然增加电场强度可改善纳米棒的排列,但施加大于6 V的电势也会产生热效应,对纳米棒阵列的质量产生负面影响。由于临界场强较高且对热运动影响的敏感性增加,表征较短长度的氢氧化铁氧体椭球体排列程度的向列序参数明显低于二氧化硅纳米棒的向列序参数。在35°C下于4 - 6 V的有效电势下组装二氧化硅纳米棒,在实现均匀纳米棒取向与最大化胶体薄膜覆盖面积之间提供了一种折衷方案。

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