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Liquid polymeric materials for optical nano-bio sensing

机译:光学纳米生物传感的液体聚合物材料

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Detecting, counting, and sizing nanoparticles is a key problem in biomedical, environmental, and materials synthesis fields. Here we demonstrate a cost-effective and high-performance approach that uses wide-field microscopy enabled by the combination of inline lensfree holography, pixel super-resolution, and vapor-condensed nano-scale lenses (nanolenses). These nanolenses are composed of liquid polyethylene glycol (PEG) that self-assembles in situ around particles of interest. A nanolens around each particle generates a more substantial phase shift than the native object alone, making it more easily detectible in the imaging system. This latest generation of lensfree holographic microscope incorporates more precise temperature control and utilizes a hermetically sealed chamber allowing for a controlled, repeatable environment for simultaneous hologram measurements and nanolens formation. To further enhance the sensitivity of our system, we have compared the performance of two different pixel super-resolution algorithms: shift-and-add and gradient descent. It was found that the gradient descent approach provides the highest resolution. Detection and localization results for 1 μm, 400 nm, and 100 nm particles are presented.
机译:检测,计数和尺寸纳米粒子是生物医学,环境和材料合成领域的关键问题。在这里,我们展示了一种成本效益和高性能的方法,它使用内联透镜全息全息,像素超分辨率和蒸气冷凝的纳米级透镜(纳米透明纳米级透镜(纳米透明纳米级透镜(纳米透镜)组合来实现宽开场显微镜。这些纳米透液由液体聚乙二醇(PEG)组成,其原位在感兴趣的粒子上自组装。各个颗粒周围的纳米型在成像系统中可以更容易地检测到围绕每个颗粒的相移更大幅度的相移。该新一代LensFree全息显微镜包括更精确的温度控制,并利用气密密封室,允许用于同时全息图和纳米形成的受控的可重复环境。为了进一步提高我们系统的灵敏度,我们已经比较了两种不同像素超分辨率算法的性能:移位和添加和梯度下降。发现梯度下降方法提供了最高分辨率。呈现了1μm,400nm和100nm颗粒的检测和定位结果。

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