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Controlled 3D nanoparticle deposition by drying of colloidal suspension in designed thin micro-porous architectures

机译:通过在设计的薄微孔架构中干燥胶体悬浮液控制3D纳米颗粒沉积

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摘要

Nanoparticle deposition by drying of colloidal suspension in thin micro-porous architectures has attracted a lot of attention in scientific research as well as industrial applications. However, the underlying mechanisms of such three-dimensional (3D) deposition are not yet fully revealed due to the complexity of the co-occurring processes of two-phase fluid flows, phase change and mass transport. Consequently, the control of 3D nanoparticle deposition remains a challenge. We use a combined experimental and numerical approach to achieve controlled 3D nanoparticle deposition by drying of colloidal suspension in two pillar-based thin micro-porous architectures. By the design of pillar layout, rectangular-spiral and circular-spiral deposition configurations are obtained globally. By varying the surface wettability, vertically symmetric and sloped nanoparticle depositions can be achieved locally. While the numerical modeling reveals the mechanisms of liquid internal flow, as well as the impact of local drying rate on nanoparticle transport, accumulation and final deposition, the experimental results of deposition configurations validate the controlling strategies. This combined experimental and numerical work provides a framework to achieve desired 3D nanoparticle deposition in thin micro-porous architectures, with a thorough understanding of the underlying mechanisms of two-phase fluid flows, phase change and mass transport.
机译:通过在薄微孔架构中干燥胶体悬浮液的纳米粒子沉积引起了科学研究的大量关注以及工业应用。然而,由于两相流体流动,相变和质量传输的共同发生过程的复杂性,这种三维(3D)沉积的潜在机制尚未完全揭示。因此,3D纳米颗粒沉积的控制仍然是一个挑战。我们使用组合的实验和数值方法来通过干燥两种基于支柱的薄微孔架构干燥胶体悬架来实现受控3D纳米颗粒沉积。通过柱形布局的设计,在全球范围内获得矩形螺旋和圆螺旋沉积配置。通过改变表面润湿性,可以在本地实现垂直对称和倾斜的纳米颗粒沉积。虽然数值模拟显示液体内部流动的机制,以及局部干燥速率对纳米粒子输送,累积和最终沉积的影响,沉积配置的实验结果验证了控制策略。该组合的实验和数值作品提供了一种框架,以在薄的微孔架构中实现所需的3D纳米颗粒沉积,以彻底了解两相流体流动,相变和大规模运输的潜在机制。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2020年第9期|120000.1-120000.13|共13页
  • 作者单位

    Department of Mechanical and Process Engineering ETH Zuerich (Swiss Federal Institute of Technology in Zuerich) Zuerich 8092 Switzerland Laboratory of Multiscale Studies in Building Physics Empa (Swiss Federal Laboratories for Materials Science and Technology) Duebendorf 8600 Switzerland;

    Key Laboratory of Green Printing CAS Research/Education Center for Excellence in Molecular Sciences Institute of Chemistry Chinese Academy of Sciences Beijing 100190 PR China;

    Department of Mechanical and Process Engineering ETH Zuerich (Swiss Federal Institute of Technology in Zuerich) Zuerich 8092 Switzerland;

    Department of Mechanical and Process Engineering ETH Zuerich (Swiss Federal Institute of Technology in Zuerich) Zuerich 8092 Switzerland;

    Smart System Integration IBM Research-Zurich Saumerstrasse 4 8803 Rueschlikon Switzerland;

    Smart System Integration IBM Research-Zurich Saumerstrasse 4 8803 Rueschlikon Switzerland;

    Earth and Environment Sciences Division (EES-16) Los Alamos National Laboratory (LANL) Los Alamos NM 87545 USA;

    Key Laboratory of Green Printing CAS Research/Education Center for Excellence in Molecular Sciences Institute of Chemistry Chinese Academy of Sciences Beijing 100190 PR China;

    Department of Civil and Building Engineering University de Sherbrooke 2500 boul. De l'Universite Sherbrooke Qc J1K 2R1 Canada;

    Department of Mechanical and Process Engineering ETH Zuerich (Swiss Federal Institute of Technology in Zuerich) Zuerich 8092 Switzerland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    3D nanoparticle deposition; Thin micro-porous architectures; Drying; Lattice Boltzmann modeling;

    机译:3D纳米粒子沉积;薄的微孔架构;烘干;格子Boltzmann建模;

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