Electrical Engineering Department, University of California, Los Angeles, CA 90095, USA.
Lab Chip. 2013 Oct 21;13(20):4015-23. doi: 10.1039/c3lc50589h. Epub 2013 Aug 12.
We demonstrate a cellphone based contact microscopy platform, termed Contact Scope, which can image highly dense or connected samples in transmission mode. Weighing approximately 76 grams, this portable and compact microscope is installed on the existing camera unit of a cellphone using an opto-mechanical add-on, where planar samples of interest are placed in contact with the top facet of a tapered fiber-optic array. This glass-based tapered fiber array has ~9 fold higher density of fiber optic cables on its top facet compared to the bottom one and is illuminated by an incoherent light source, e.g., a simple light-emitting-diode (LED). The transmitted light pattern through the object is then sampled by this array of fiber optic cables, delivering a transmission image of the sample onto the other side of the taper, with ~3× magnification in each direction. This magnified image of the object, located at the bottom facet of the fiber array, is then projected onto the CMOS image sensor of the cellphone using two lenses. While keeping the sample and the cellphone camera at a fixed position, the fiber-optic array is then manually rotated with discrete angular increments of e.g., 1-2 degrees. At each angular position of the fiber-optic array, contact images are captured using the cellphone camera, creating a sequence of transmission images for the same sample. These multi-frame images are digitally fused together based on a shift-and-add algorithm through a custom-developed Android application running on the smart-phone, providing the final microscopic image of the sample, visualized through the screen of the phone. This final computation step improves the resolution and also removes spatial artefacts that arise due to non-uniform sampling of the transmission intensity at the fiber optic array surface. We validated the performance of this cellphone based Contact Scope by imaging resolution test charts and blood smears.
我们展示了一种基于手机的接触显微镜平台,称为 Contact Scope,它可以在透射模式下对高密度或连接的样本进行成像。这个便携式和紧凑的显微镜重约 76 克,通过光机附加组件安装在手机现有的相机单元上,将感兴趣的平面样本与锥形光纤阵列的顶面对齐。与底面相比,这种基于玻璃的锥形光纤阵列在其顶面上具有约 9 倍更高密度的光纤电缆,并且由非相干光源(例如简单的发光二极管 (LED))照明。通过物体的透射光图案然后由该光纤阵列的光纤电缆进行采样,在光纤阵列的另一侧提供样品的透射图像,每个方向放大约 3 倍。光纤阵列底部的物体放大图像,然后使用两个透镜将其投影到手机的 CMOS 图像传感器上。在保持样品和手机相机固定位置的同时,手动以例如 1-2 度的离散角度增量旋转光纤阵列。在光纤阵列的每个角度位置,使用手机相机捕获接触图像,为同一样品创建一系列透射图像。这些多帧图像通过在运行在智能手机上的自定义开发的 Android 应用程序中基于移位和相加算法进行数字融合,提供样品的最终微观图像,通过手机屏幕可视化。此最终计算步骤提高了分辨率,并消除了由于光纤阵列表面上的透射强度非均匀采样而产生的空间伪影。我们通过对分辨率测试图表和血涂片成像来验证这种基于手机的 Contact Scope 的性能。