The penetrating nature of hard X-rays and their short wavelengths below about 0.1 nanometres (millionths of a millimetre) make them attractive for imaging of objects such as biological cells at resolutions beyond that of visible light and without sectioning or thinning the sample as needed for transmission electron microscopy. However, these properties of X-rays also make them difficult to focus. One way is to use specialised X-ray optics called multilayer Laue lenses (MLLs). These lenses consist of alternating layers of two different materials with nanometre thickness. In contrast to conventional optics, MLLs do not refract light but work by diffracting the incident X-rays in a way that concentrates the beam on a small spot. To achieve this, the layer thickness of the materials has to be precisely controlled. The layers must gradually change in thickness and orientation throughout the lens.
The scientists made several innovations in the fabrication process to achieve high efficiency and to extend the numerical aperture (NA) far beyond what was previously possible, to enable imaging at spatial resolutions below 10 nanometres, with diffraction efficiencies exceeding 80 per cent. The new lenses consist of over 10 000 alternating layers of a new material combination, tungsten carbide and silicon carbide. To focus an X-ray beam in the vertical and horizontal directions it has to pass through two perpendicularly oriented lenses. By using this set-up, a spot size of 8.4 nanometres by 6.8 nanometres was demonstrated. The resolution of the new lenses is about five times better than achievable with typical state-of-the-art lenses.
Reference:
2018 Microscopy Today Innovation Awards; Microscopy Today; DOI: 10.1017/S1551929518000822 Source: DESY Press Release from 8th August, 2018
2018 Microscopy Today Innovation Awards; Microscopy Today; DOI: 10.1017/S1551929518000822 Source: DESY Press Release from 8th August, 2018
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