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Construction of a new type of low-energy, scanning electron microscope with atomic resolution

机译:具有原子分辨率的新型低能扫描电子显微镜的构建

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We describe a new type of scanning electron microscope which works by directly imaging the electron field-emission sites on a nanotip. Electrons are extracted from the nanotip through a nanoscale aperture, accelerated in a high electric field and focussed to a spot using a microscale einzel lens. If the whole microscope (accelerating section and lens) and the focal length are both restricted in size to below 10 microns, then computer simulations show that the effects of aberration are extremely small and it is possible to have a system with approximately unit magnification, at electron energies as low as 300 eV. Thus a typical emission site of 1 nm diameter will produce an image of the same size and an atomic emission site with give a resolution of 0.1-0.2 nm (1-2 A), and because the beam is not allowed to expand beyond 100nm in diameter the depth of field is large and the contribution to the beam spot size from chromatic aberrations is less than 0.02 nm (0.2 A) for 500 eV electrons. Since it is now entirely possible to make stable atomic sized emitters (nanopyramids) it is expected that this instrument will have atomic resolution. Furthermore the brightness of the beam is determined only by the field-emission and can be up to a million times larger than in a typical (high-energy) electron microscope. The construction of this microscope, based on using a nanotip electron source which is mounted on a nanopositioner so that it can be positioned at the correct point adjacent to the microscope, entrance aperture, is described. In this geometry the scanning is achieved by moving the sample using piezos. Two methods for the construction of the microscope column are reviewed and the results of preliminary tests are described. The advantages of this low energy, bright-beam, electron microscope with atomic resolution are described. It can be used in either scanning mode or diffraction mode. The major advantage over existing microscopes is that because it works at very low energies the elastic backscattering is sensitive to the atomic species and so these can be identified directly without any energy discrimination on the detector. Furthermore it is also possible to use the microscope to do low energy electron diffraction which, because the scattering cross-section is large, can be carried out on single molecules. If these are biological samples such as DNA, proteins and viruses then the low energy means that the radiation damage is minimised. Some possibilities for mounting these samples, which can reduce radiation damage, are discussed. Finally we show a system for producing holograms of single protein molecules.
机译:我们描述了一种新型的扫描电子显微镜,其工作原理是直接对纳米尖端上的电子场发射部位进行成像。通过纳米级孔径从纳米尖端提取电子,在高电场中加速电子,并使用微尺度einzel透镜聚焦到一个点。如果将整个显微镜(加速部分和透镜)和焦距的大小都限制在10微米以下,则计算机仿真表明,像差的影响非常小,并且可能有一个单位放大倍数大约为10的系统。电子能量低至300 eV。因此,典型的直径为1 nm的发射点将产生相同大小的图像,并且原子发射点的分辨率为0.1-0.2 nm(1-2 A),并且由于不允许光束扩展到100 nm以上,直径越大,景深越大,对于500 eV电子,色差对束斑尺寸的贡献小于0.02 nm(0.2 A)。由于现在完全有可能制造出稳定的原子尺寸发射体(纳米金字塔),因此可以预期该仪器将具有原子分辨率。此外,光束的亮度仅由场发射决定,并且可以比典型的(高能)电子显微镜大一百万倍。描述了这种显微镜的构造,该构造基于使用安装在纳米定位器上的纳米尖端电子源,以便可以将其定位在与显微镜相邻的正确点,即入口孔上。在这种几何形状中,扫描是通过使用压电体移动样品来实现的。回顾了两种构造显微镜柱的方法,并描述了初步测试的结果。描述了这种具有原子分辨率的低能量,亮光束电子显微镜的优点。可以在扫描模式或衍射模式下使用。相对于现有显微镜的主要优势在于,由于它在非常低的能量下工作,弹性后向散射对原子种类敏感,因此可以直接识别它们,而无需在检测器上进行任何能量辨别。此外,还可以使用显微镜进行低能电子衍射,这是因为散射截面大,可以在单个分子上进行。如果这些是生物样品,例如DNA,蛋白质和病毒,则低能量意味着将辐射损害降至最低。讨论了安装这些样品的一些可能的方法,这些方法可以减少辐射损伤。最后,我们展示了产生单个蛋白质分子全息图的系统。

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