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A λ/30 resolution laser speckle pattern biosensor for dynamic studies on live samples

机译:λ/ 30分辨率激光散斑图案生物传感器,用于对活样品进行动态研究

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摘要

Nowadays there is a big interest in the research of cell behaviour in different sciences, like biology, physics, and medicine. For this reason, many interdisciplinary research projects have been developed in many countries. The main goal of the realization of the proposed biosensor is to obtain a super high resolution optical detection of nano-scaled movements of live cells. We used a very straightforward principle, the interference of laser light with the membrane of the cells under investigation. The laser light is focused on the target cell, while observing the picture through an optical microscope. The laser light creates an interference image (speckle pattern) that is projected on a screen and monitored by a CCD camera. This interference pattern is perturbed by any movement or displacement of the cells, and this interaction is recorded in real time by the CCD. While the contrast in standard optical microscopy is very low, the advantage of this approach is that the coherence of laser light produce constructive or destructive patterns that can be detected with very high signal-to-noise ratio. The displacement resolution we can achieve is better than λ/30, that is in the order of 20nm.
机译:如今,人们对生物学,物理学和医学等不同科学领域中细胞行为的研究引起了极大兴趣。因此,许多国家已经开发了许多跨学科的研究项目。实现所提出的生物传感器的主要目标是获得活细胞纳米级运动的超高分辨率光学检测。我们使用了非常简单的原理,即激光对被研究细胞膜的干扰。激光聚焦在目标细胞上,同时通过光学显微镜观察图像。激光产生干涉​​图像(斑点图案),该图像投射在屏幕上并由CCD摄像机监控。单元的任何移动或位移都会干扰此干扰模式,并且此交互作用将由CCD实时记录。尽管标准光学显微镜中的对比度非常低,但这种方法的优势在于,激光的相干性会产生相长或相消的图案,可以用很高的信噪比对其进行检测。我们可以实现的位移分辨率优于λ/ 30,约为20nm。

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