Università degli Studi di Milano, via Giovanni Celoria 16, 20133 Milano, Italy.
Istituto di Cristallografia, Consiglio Nazionale delle Ricerche (IC-CNR), via Giovanni Amendola, 122/O, 70126 Bari, Italy.
Sci Rep. 2017 Feb 9;7:42236. doi: 10.1038/srep42236.
Coherent Diffractive Imaging is a lensless technique that allows imaging of matter at a spatial resolution not limited by lens aberrations. This technique exploits the measured diffraction pattern of a coherent beam scattered by periodic and non-periodic objects to retrieve spatial information. The diffracted intensity, for weak-scattering objects, is proportional to the modulus of the Fourier Transform of the object scattering function. Any phase information, needed to retrieve its scattering function, has to be retrieved by means of suitable algorithms. Here we present a new approach, based on a memetic algorithm, i.e. a hybrid genetic algorithm, to face the phase problem, which exploits the synergy of deterministic and stochastic optimization methods. The new approach has been tested on simulated data and applied to the phasing of transmission electron microscopy coherent electron diffraction data of a SrTiO sample. We have been able to quantitatively retrieve the projected atomic potential, and also image the oxygen columns, which are not directly visible in the relevant high-resolution transmission electron microscopy images. Our approach proves to be a new powerful tool for the study of matter at atomic resolution and opens new perspectives in those applications in which effective phase retrieval is necessary.
相干衍射成像是一种无透镜技术,它可以在不受透镜像差限制的空间分辨率下对物质进行成像。该技术利用相干光束散射的周期性和非周期性物体的测量衍射图案来获取空间信息。对于弱散射物体,衍射强度与物体散射函数的傅里叶变换的模成正比。为了恢复其散射函数,需要通过合适的算法来恢复任何相位信息。在这里,我们提出了一种新的方法,基于一种模仿生物进化的算法,即混合遗传算法,来解决相位问题,该方法利用了确定性和随机优化方法的协同作用。该新方法已经在模拟数据上进行了测试,并应用于 SrTiO 样品的透射电子显微镜相干电子衍射数据的相位确定。我们已经能够定量地恢复出投影原子势,并且还可以对氧柱进行成像,而这些在相关的高分辨率透射电子显微镜图像中是无法直接看到的。我们的方法被证明是研究原子分辨率物质的一种新的强大工具,并为那些需要有效相位恢复的应用开辟了新的前景。