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Fabrication of metallic nanoparticles by spinodal dewetting of thin films: A high-throughput approach

机译:通过旋节线对薄膜进行去湿制备金属纳米颗粒:一种高通量方法

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摘要

Metal nanoparticles on structured supports are used in a variety of technological applications including biosensing, energy harvesting, and electronics. In every case, the functions and properties of the metallic nanostructures depend on both their composition and structure (i.e. size, shape, and spatial distribution). Among the challenges to the development of metal nanoparticles for these applications is the characterization of relationships between their structure and their functional properties over multiple structural degrees of freedom spanning a large range of values. In this work, a method for creating a morphological gradient of metal nanoparticles on a substrate is described. The approach, suited for high-throughput fabrication and characterization, is based on spinodal dewetting of a metallic thin film from its substrate. Through control of initial film thickness, anneal temperature, and anneal time, spinodal dewetting results in supported nanoparticles with well-defined and controlled structure. The approach is demonstrated through its application to preparation of Pd nanoparticles on a silicon nitride substrate. The morphologies of the particles were characterized by scanning electron and atomic force microscopies. Free energy-based stability and topologi-cal analyses were used to confirm the dewetting mechanism. In addition, the stability theory provides a connection to the thermophysical properties of the resulting nanopartide array. The dewetting approach is general to any metal/support system and provides an alternative, inexpensive, and robust means to rapidly create metal nanostructures with control of morphology. It shows promise for large scale production of metal nanoparticles structures, as well as understanding basic stability properties of thin metal films.
机译:结构化载体上的金属纳米颗粒可用于多种技术应用,包括生物传感,能量收集和电子学。在每种情况下,金属纳米结构的功能和性质都取决于它们的组成和结构(即大小,形状和空间分布)。在用于这些应用的金属纳米颗粒的开发中,面临的挑战之一是在跨越较大值范围的多个结构自由度上表征其结构与功能特性之间的关系。在这项工作中,描述了一种在基底上产生金属纳米颗粒形态梯度的方法。适用于高通量制造和表征的方法是基于金属基底的旋节线去湿法。通过控制初始膜厚度,退火温度和退火时间,旋节线除湿可得到具有明确定义和受控结构的负载纳米颗粒。该方法通过将其应用于在氮化硅衬底上制备Pd纳米颗粒而得到了证明。颗粒的形貌通过扫描电子和原子力显微镜表征。基于自由能的稳定性和拓扑分析被用于确认去湿机理。另外,稳定性理论提供了与所得纳米粒子阵列的热物理性质的联系。除湿方法是任何金属/载体系统通用的方法,并提供了一种可替代的,廉价的且坚固的方法,可以在控制形貌的情况下快速创建金属纳米结构。它显示出有望大规模生产金属纳米颗粒结构,以及了解金属薄膜的基本稳定性。

著录项

  • 来源
    《Thin Solid Films》 |2012年第2012期|473-479|共7页
  • 作者单位

    US. Department of Energy, National Energy Technology Laboratory, Pittsburgh, PA 15262, USA,Department of Chemical Engineering, Carnegie Mellon University, Pittsburgh, PA 15213, USA;

    US. Department of Energy, National Energy Technology Laboratory, Pittsburgh, PA 15262, USA,Department of Chemical Engineering, Carnegie Mellon University, Pittsburgh, PA 15213, USA;

    Department of Physics, Carnegie Mellon University, Pittsburgh, PA 15213, USA;

    US. Department of Energy, National Energy Technology Laboratory, Pittsburgh, PA 15262, USA,Department of Chemical Engineering, Carnegie Mellon University, Pittsburgh, PA 15213, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    spinodal dewetting; metal nanoparticles; high-throughput; structural gradient; thin films; palladium; silicon nitride;

    机译:旋节线去湿;金属纳米颗粒;高通量结构梯度薄膜;钯;氮化硅;

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