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Tabletop Coherent Diffractive Imaging of Extended Objects in Transmission and Reflection Geometry

机译:桌面相干差异衍射和反射几何中的延伸对象的衍射成像

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Recent breakthroughs in high harmonic generation have extended the reach of bright tabletop coherent light sources from a previous limit of ≈100 eV in the extreme ultraviolet (EUV) all the way beyond 1 keV in the soft X-ray region. Due to its intrinsically short pulse duration and spatial coherence, this light source can be used to probe the fastest physical processes at the femtosecond timescale, with nanometer-scale spatial resolution using a technique called coherent diffractive imaging (CDI). CDI is an aberration-free technique that replaces image-forming optics with a computer phase retrieval algorithm, which recovers the phase of a measured diffraction amplitude. This technique typically requires the sample of interest to be isolated; however, it is possible to loosen this constraint by imposing isolation on the illumination. Here we extend previous tabletop results, in which we demonstrated the ability to image a test object with 22 nm resolution using 13 nm light [3], to imaging of more complex samples using the keyhole CDI technique adapted to our source. We have recently demonstrated the ability to image extended objects in a transmission geometry with ≈100 nm resolution. Finally, we have taken preliminary CDI measurements of extended nanosystems in reflection geometry. We expect that this capability will soon allow us to image dynamic processes in nanosystems at the femtosecond and nanometer scale.
机译:在柔软的X射线区域中,高谐波产生的最近在高谐波产生中的突破延伸了明亮的桌面相干光源的达到极大的紫外线(EUV)中的≈100eV中的前极限。由于其本质上短的脉冲持续时间和空间相干性,这种光源可用于探测Femtosecond Timescale的最快物理过程,使用称为相干衍射成像(CDI)的技术,纳米级空间分辨率。 CDI是一种无像差技术,取代具有计算机相位检索算法的图像形成光学器件,其恢复测量的衍射幅度的相位。该技术通常需要待分离出感兴趣的样本;然而,可以通过对照明施加隔离来放松该约束。在这里,我们扩展了以前的桌面结果,其中我们证明了使用13 nm灯[3]的22nm分辨率将测试对象图像图像图像,以使用适用于我们的来源的锁孔CDI技术对更复杂的样本进行成像。我们最近展示了在传输几何中以≈100nm的分辨率进行映射扩展对象的能力。最后,我们已经采取了反射几何中的延长纳米系统的初步CDI测量。我们预计这种能力将很快允许我们在Femtosecond和纳米级的纳米系统中的动态过程。

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