Surface and Microanalysis Science Division, National Institute of Standards and Technology, Gaithersburg, Maryland MD20899-8371, USA.
J Microsc. 2011 May;242(2):117-23. doi: 10.1111/j.1365-2818.2010.03484.x. Epub 2011 Jan 20.
The imaging of microscopic structures at nanometre-scale spatial resolution in a liquid environment is of interest for a wide range of studies. Recently, a liquid flow transmission electron microscopy (TEM) holder equipped with a microfluidic cell has been developed and shown to exhibit flow of nanoparticles through an electron transparent viewing window. Here we demonstrate the application of the flow cell system for both scanning and conventional transmission electron microscopy imaging of immobilized nanoparticles with a resolution of a few nanometres in liquid water of micrometre thickness. The spatial resolution of conventional TEM bright field imaging is shown to be limited by chromatic aberration due to multiple inelastic scattering in the water, and we demonstrate that the liquid in the cell can be displaced by a gas phase that forms under intense electron irradiation. Our data suggest that under appropriate conditions, TEM imaging with a liquid flow cell is a promising method for understanding the in situ behaviour of nanoscale structures in a prescribed and dynamically changing chemical environment.
在液体环境中以纳米级空间分辨率对微观结构进行成像,这是广泛研究领域的关注点。最近,开发了一种配备微流控池的液体流动透射电子显微镜(TEM)支架,并已证明其能够使纳米颗粒在电子透明观察窗中流动。在这里,我们展示了该流池系统在液体水中固定纳米颗粒的扫描和传统透射电子显微镜成像中的应用,其在几纳米的分辨率下,液体水的厚度为几微米。传统 TEM 明场成像的空间分辨率受到水中多次非弹性散射导致的色差限制,我们证明可以通过在强烈电子照射下形成的气相来置换池中的液体。我们的数据表明,在适当的条件下,使用液体流动池的 TEM 成像,是一种有前途的方法,可用于在规定且动态变化的化学环境中理解纳米级结构的原位行为。