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Increased space-bandwidth product in pixel super-resolved lensfree on-chip microscopy

机译:像素超分辨无透镜片上显微镜中增加的空间带宽乘积

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摘要

Pixel-size limitation of lensfree on-chip microscopy can be circumvented by utilizing pixel-super-resolution techniques to synthesize a smaller effective pixel, improving the resolution. Here we report that by using the two-dimensional pixel-function of an image sensor-array as an input to lensfree image reconstruction, pixel-super-resolution can improve the numerical aperture of the reconstructed image by ~3 fold compared to a raw lensfree image. This improvement was confirmed using two different sensor-arrays that significantly vary in their pixel-sizes, circuit architectures and digital/optical readout mechanisms, empirically pointing to roughly the same space-bandwidth improvement factor regardless of the sensor-array employed in our set-up. Furthermore, such a pixel-count increase also renders our on-chip microscope into a Giga-pixel imager, where an effective pixel count of ~1.6–2.5 billion can be obtained with different sensors. Finally, using an ultra-violet light-emitting-diode, this platform resolves 225 nm grating lines and can be useful for wide-field on-chip imaging of nano-scale objects, e.g., multi-walled-carbon-nanotubes.
机译:通过使用像素超分辨率技术来合成较小的有效像素,从而提高分辨率,可以避免无透镜片上显微镜的像素大小限制。在这里我们报告说,通过使用图像传感器阵列的二维像素函数作为无透镜图像重建的输入,与原始的无透镜镜头相比,像素超分辨率可以将重建图像的数值孔径提高约3倍。图片。使用两种不同的传感器阵列(像素大小,电路架构和数字/光学读出机制存在显着差异)证实了这一改进,无论采用哪种传感器阵列,根据经验,它们都指向大致相同的空间带宽改进因子。起来此外,这种像素数的增加也使我们的片上显微镜成为了千兆像素成像仪,其中使用不同的传感器可获得的有效像素数约为1.6-2.5十亿。最后,使用紫外线发光二极管,该平台可分辨225 nm的光栅线,可用于纳米级物体(例如多壁碳纳米管)的宽域片上成像。

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