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The nanoaquarium: A nanofluidic platform for in situ transmission electron microscopy in liquid media.

机译:纳米水族馆:用于液体介质中原位透射电子显微镜的纳米流体平台。

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摘要

There are many scientifically interesting and technologically relevant nanoscale phenomena that take place in liquid media. Examples include aggregation and assembly of nanoparticles; colloidal crystal formation; liquid phase growth of structures such as nanowires; electrochemical deposition and etching for fabrication processes and battery applications; interfacial phenomena; boiling and cavitation; and biological interactions. Understanding of these fields would benefit greatly from real-time, in situ transmission electron microscope (TEM) imaging with nanoscale resolution. Most liquids cannot be imaged by traditional TEM due to evaporation in the high vacuum environment and the requirement that samples be very thin. Liquid-cell in situ TEM has emerged as an exciting new experimental technique that hermetically seals a thin slice of liquid between two electron transparent membranes to enable TEM imaging of liquid-based processes. This work presents details of the fabrication of a custom-made liquid-cell in situ TEM device, dubbed the nanoaquarium. The nanoaquarium's highlights include an exceptionally thin sample cross section (10s to 100s of nm); wafer scale processing that enables high-yield mass production; robust hermetic sealing that provides leak-free operation without use of glue, epoxy, or any polymers; compatibility with lab-on-chip technology; and on-chip integrated electrodes for sensing and actuation. The fabrication process is described, with an emphasis on direct wafer bonding. Experimental results involving direct observation of colloid aggregation using an aqueous solution of gold nanoparticles are presented. Quantitative analysis of the growth process agrees with prior results and theory, indicating that the experimental technique does not radically alter the observed phenomenon. For the first time, in situ observations of nanoparticles at a contact line and in an evaporating thin film of liquid are reported, with applications for techniques such as dip-coating and drop-casting, commonly used for depositing nanoparticles on a surface via convective-capillary assembly. Theoretical analysis suggests that the observed particle motion and aggregation are caused by gradients in surface tension and disjoining pressure in the thin liquid film.
机译:在液体介质中发生了许多科学有趣且与技术相关的纳米级现象。实例包括纳米颗粒的聚集和组装;胶体晶体形成;纳米线等结构的液相生长;用于制造过程和电池应用的电化学沉积和蚀刻;界面现象;沸腾和空化;和生物相互作用。了解这些领域将极大地受益于具有纳米级分辨率的实时原位透射电子显微镜(TEM)成像。由于在高真空环境中的蒸发以及样品非常薄的要求,大多数液体无法通过传统TEM成像。液池原位TEM已成为一项激动人心的新实验技术,该技术将两层电子透明膜之间的液体薄片密封起来,从而能够对基于液的过程进行TEM成像。这项工作介绍了定制的液体细胞原位TEM装置(称为纳米水族馆)的制造细节。纳米水族馆的亮点包括超薄的样品横截面(10s至100s nm)。晶圆级处理,可实现高产量的批量生产;坚固的气密密封,无需使用胶水,环氧树脂或任何聚合物即可提供无泄漏操作;与片上实验室技术的兼容性;以及用于感测和驱动的片上集成电极。描述了制造过程,重点是直接晶圆键合。提出了涉及使用金纳米颗粒水溶液直接观察胶体聚集的实验结果。对生长过程的定量分析与先前的结果和理论相吻合,表明实验技术并未从根本上改变观察到的现象。首次报道了在接触线和蒸发的液体薄膜中对纳米颗粒的原位观察,并应用了浸涂和滴铸等技术,这些技术通常用于通过对流沉积在表面上沉积纳米颗粒毛细管组件。理论分析表明,观察到的粒子运动和聚集是由液体薄膜中表面张力的梯度和分离压力引起的。

著录项

  • 作者

    Grogan, Joseph M.;

  • 作者单位

    University of Pennsylvania.;

  • 授予单位 University of Pennsylvania.;
  • 学科 Engineering Mechanical.;Engineering Materials Science.;Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 198 p.
  • 总页数 198
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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