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Wavefront analysis and optimization from conventional liquid crystal displays for low-cost holographic optical tweezers and digital holographic microscopy

机译:用于低成本全息光学镊子和数字全息显微镜的常规液晶显示器的波前分析和优化

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In different study fields the manipulation and imaging of micro-sized particles is essential. The use of holographic optical tweezers (HOT) and digital holographic microscopy (DHM) facilitates this task in a non-mechanical way by providing the proper computer generated hologram and the required amount of light. Electrically addressed spatial light modulators (EASLM) found in holographic optical tweezers are typically of the reflective liquid crystal on silicon (LCoS) type which can achieve a phase shift of more than 2π but they are expensive. Similar components like transmissive twisted nematic liquid crystal displays (TN-LCD) are produced in large quantities, their optical characteristics improve rapidly and they are inexpensive. Under certain circumstances these devices can be used instead of expensive spatial light modulators. Consumer grade objectives are not always well corrected for spherical aberration. In that case conventional liquid crystal displays can also compensate these undesired optical effects. For this purpose software-corrected computer generated holograms are calculated. Procedures to analyze and compensate different parameters of a conventional low-cost liquid crystal display, e.g. phase shift evaluation and aberration correction of objectives by Zernike polynomials approximation are explained. The applied software compensation of the computer generated hologram has shown significant improvement of the focus quality. An important price reduction of holographic devices could be achieved by replacing special optical elements if correction algorithms for conventional liquid crystal displays are provided.
机译:在不同的研究领域中,微颗粒的操纵和成像至关重要。全息光学镊子(HOT)和数字全息显微镜(DHM)的使用通过提供适当的计算机生成的全息图和所需的光量,以非机械方式简化了此任务。全息光镊中发现的电寻址空间光调制器(EASLM)通常是硅反射液晶(LCoS)类型,可以实现大于2π的相移,但价格昂贵。大量生产类似组件,例如透射扭曲向列液晶显示器(TN-LCD),它们的光学特性迅速提高,而且价格便宜。在某些情况下,可以使用这些设备代替昂贵的空间光调制器。消费级物镜并非总是能很好地校正球差。在那种情况下,常规的液晶显示器也可以补偿这些不希望的光学效应。为此,计算软件校正的计算机生成的全息图。分析和补偿常规低成本液晶显示器的不同参数的过程,例如说明了通过Zernike多项式逼近进行的相移评估和物镜像差校正。计算机生成的全息图的应用软件补偿已显示出聚焦质量的显着改善。如果提供了常规液晶显示器的校正算法,则可以通过更换特殊的光学元件来大幅降低全息照相设备的价格。

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