Guehrs Erik, Günther Christian M, Pfau Bastian, Rander Torbjörn, Schaffert Stefan, Schlotter William F, Eisebitt Stefan
Institut für Optik und Atomare Physik, Technische Universität Berlin, Strasse des 17. Juni 135, 10623 Berlin, Germany.
Opt Express. 2010 Aug 30;18(18):18922-31. doi: 10.1364/OE.18.018922.
Mask-based Fourier transform holography is used to record images of biological objects with 2.2 nm X-ray wavelength. The holography mask and the object are decoupled from each other which allows us to move the field of view over a large area over the sample. Due to the separation of the mask and the sample on different X-ray windows, a gap between both windows in the micrometer range typically exists. Using standard Fourier transform holography, focussed images of the sample can directly be reconstructed only for gap distances within the setup's depth of field. Here, we image diatoms as function of the gap distance and demonstrate the possibility to recover focussed images via a wavefield back-propagation technique. The limitations of our approach with respect to large separations are mainly associated with deviations from flat-field illumination of the object.
基于掩模的傅里叶变换全息术用于在2.2纳米X射线波长下记录生物物体的图像。全息掩模与物体相互解耦,这使我们能够在样品的大面积上移动视场。由于掩模和样品位于不同的X射线窗口上,两个窗口之间通常存在微米级的间隙。使用标准傅里叶变换全息术,只有在装置景深范围内的间隙距离才能直接重建样品的聚焦图像。在此,我们将硅藻成像为间隙距离的函数,并展示了通过波场反向传播技术恢复聚焦图像的可能性。我们的方法在大间距方面的局限性主要与偏离物体的平面场照明有关。