Universitat de Valencia, Departamento de Optica, Burjassot, Spain.
J Biomed Opt. 2010 Jul-Aug;15(4):046027. doi: 10.1117/1.3481142.
Digital in-line holographic microscopy (DIHM) is a modern approach capable of achieving micron-range lateral and depth resolutions in three-dimensional imaging. DIHM in combination with numerical imaging reconstruction uses an extremely simplified setup while retaining the advantages provided by holography with enhanced capabilities derived from algorithmic digital processing. We introduce superresolved DIHM incoming from time and angular multiplexing of the sample spatial frequency information and yielding in the generation of a synthetic aperture (SA). The SA expands the cutoff frequency of the imaging system, allowing submicron resolutions in both transversal and axial directions. The proposed approach can be applied when imaging essentially transparent (low-concentration dilutions) and static (slow dynamics) samples. Validation of the method for both a synthetic object (U.S. Air Force resolution test) to quantify the resolution improvement and a biological specimen (sperm cells biosample) are reported showing the generation of high synthetic numerical aperture values working without lenses.
数字共线全息显微镜(DIHM)是一种现代方法,能够在三维成像中实现亚微米级的横向和深度分辨率。DIHM 与数值成像重建相结合,使用极其简化的设置,同时保留了全息术提供的优势,并通过算法数字处理增强了功能。我们介绍了从时间和角度复用样本空间频率信息的超分辨 DIHM,从而产生了合成孔径(SA)。SA 扩展了成像系统的截止频率,允许在横向和轴向方向上达到亚微米分辨率。当对本质上透明(低浓度稀释)和静态(缓慢动态)的样本进行成像时,可以应用该方法。报道了该方法对合成物体(美国空军分辨率测试)进行验证,以量化分辨率的提高,以及对生物样本(精子细胞生物样本)进行验证,结果显示在没有透镜的情况下生成了高数值孔径的合成图像。