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Laser beam shaping for biomedical microscopy techniques

机译:用于生物医学显微镜技术的激光束形状

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Uniform illumination of a working field is very important in optical systems of confocal microscopy and various implementations of fluorescence microscopy like TIR, SSIM, STORM, PALM to enhance performance of these laserbased research techniques. Widely used TEM_(00) laser sources are characterized by essentially non-uniform Gaussian intensity profile which leads usually to non-uniform intensity distribution in a microscope working field or in a field of microlenses array of a confocal microscope optical system, this non-uniform illumination results in instability of measuring procedure and reducing precision of quantitative measurements. Therefore transformation of typical Gaussian distribution of a TEM_(00) laser to flat-top (top hat) profile is an actual technical task, it is solved by applying beam shaping optics. Due to high demands to optical image quality the mentioned techniques have specific requirements to a uniform laser beam: flatness of phase front and extended depth of field, - from this point of view the microscopy techniques are similar to holography and interferometry. There are different refractive and diffractive beam shaping approaches used in laser industrial and scientific applications, but only few of them are capable to fulfil the optimum conditions for beam quality required in discussed microscopy techniques. We suggest applying refractive field mapping beam shapers πShaper, which operational principle presumes almost lossless transformation of Gaussian to flat-top beam with flatness of output wavefront, conserving of beam consistency, providing collimated low divergent output beam, high transmittance, extended depth of field, negligible wave aberration, and achromatic design provides capability to work with several lasers with different wavelengths simultaneously. The main function of a beam shaper is transformation of laser intensity profile, further beam transformation to provide optimum for a particular technique spot size and shape has to be realized by an imaging optical system which can include microscope objectives and tube lenses. This paper will describe design basics of refractive beam shapers and optical layouts of their applying in microscopy systems. Examples of real implementations and experimental results will be presented as well.
机译:工作场的均匀照明在共聚焦显微镜的光学系统中非常重要,以及荧光显微镜等各种实施如TIR,SSIM,Storm,Palm,以提高这些激光的研究技术的性能。广泛使用的TEM_(00)激光源的特征在于基本上不均匀的高斯强度分布,其通常在显微镜工作场中的不均匀强度分布或共聚焦显微镜光学系统的微透镜阵列的领域中,这是不均匀的照明导致测量程序的不稳定性以及降低定量测量精度。因此,TEM_(00)激光的典型高斯分布的转换为平顶(顶帽)轮廓是实际的技术任务,通过施加光束整形光学来解决。由于很高的要求,以光学图像质量的提到的技术必须均匀激光束的具体要求:相位波前的平整度和扩展景深, - 从这个角度来看的显微镜技术类似于全息干涉和。激光工业和科学应用中使用的不同折射率和衍射束整形方法,但其中只有很少有能力满足所讨论的显微镜技术所需的光束质量的最佳条件。我们建议应用折射场映射光束整形器πshaper,其操作原理推定了高斯对平顶梁的无损变换,具有输出波前的平整度,节约光束一致性,提供准直的低发散梁,高透射率,延长景深,忽略不计的波形像,以及消色差设计提供了与同时具有不同波长的多个激光器的能力。光束整形器的主要功能是激光强度曲线的变换,进一步的光束变换对于特定技术点尺寸和形状提供最佳的,该成像光学系统必须包括显微镜目的和管透镜。本文将描述折射梁成形器的设计基础和它们在显微镜系统中施加的光学布局。还将呈现实际实现和实验结果的实例。

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