Role of fluid forces and depletion interactions in directing assembly of aqueous gold nanorods on hydrophobic surfaces

IF 4.7 3区 材料科学 Q2 CHEMISTRY, PHYSICAL
N.P. Vaisakh , Suman Bhattacharjee , Sunita Srivastava
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引用次数: 0

Abstract

The interaction between macroscopic fluid flow and nanoscale forces has resulted in the formation of long-range assemblies through evaporation-induced self-assembly. Anisotropic gold nanorods (AuNR) can form disordered, smectic, or vertically ordered long-range structures, but controlling their assembly remains a challenge and requires a deeper understanding of fundamental interaction mechanisms. In this work, we established a correlation between the in situ drying profiles, measured using an optical tensiometer, and deposit pattern, imaged ex situ using electron microscopy. Increasing particle concentration induced a transition from coffee-ring to uniform deposition at the microscale, while nanoscale structures shifted from isotropic/smectic to vertically aligned crystalline AuNRs. The interplay of capillary and Marangoni flow influences assembly at both macro and nanoscales, with the deposition process and nanoparticle ordering being highly sensitive to interparticle and nanoparticle-substrate interactions. By systematically studying key parameters, we aim to develop a comprehensive framework for the rational design and fabrication of nanomaterials with precisely controlled structure and properties.

Abstract Image

流体力和耗竭相互作用在疏水表面上指导水金纳米棒组装中的作用
宏观流体流动和纳米尺度力之间的相互作用导致通过蒸发诱导的自组装形成远程组装。各向异性金纳米棒(unr)可以形成无序、均匀或垂直有序的远程结构,但控制它们的组装仍然是一个挑战,需要对基本相互作用机制有更深的了解。在这项工作中,我们建立了原位干燥剖面(使用光学张力计测量)和沉积模式(使用电子显微镜成像)之间的相关性。颗粒浓度的增加导致微尺度上从咖啡环沉积向均匀沉积转变,而纳米尺度上从各向同性/近晶结构向垂直排列的结晶aunr结构转变。毛细管和马兰戈尼流的相互作用影响宏观和纳米尺度上的组装,沉积过程和纳米颗粒的顺序对颗粒间和纳米颗粒-衬底的相互作用高度敏感。通过系统地研究关键参数,我们旨在为合理设计和制造具有精确控制结构和性能的纳米材料建立一个全面的框架。
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来源期刊
Colloid and Interface Science Communications
Colloid and Interface Science Communications Materials Science-Materials Chemistry
CiteScore
9.40
自引率
6.70%
发文量
125
审稿时长
43 days
期刊介绍: Colloid and Interface Science Communications provides a forum for the highest visibility and rapid publication of short initial reports on new fundamental concepts, research findings, and topical applications at the forefront of the increasingly interdisciplinary area of colloid and interface science.
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