利用折射光学元件形成多波束动态梯度干涉光场

A. Ryzhevich, I. V. Balykin, T. A. Zheleznyakova, N. S. Kazak
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引用次数: 0

摘要

本文介绍了通过使用折射光学元件对三束或四束相干光进行干涉而获得的在时间和空间上可控变化的光场的形成方法和特性。三光束和四光束干涉场的形成分别使用三面体和四面体玻璃金字塔。至少两束干涉光的相位变化受控装置确保了干涉场在横向平面上发生位移的可能性。这些光束的传播方向与入射到金字塔上的原始光束的光轴不在同一平面上。在三光束和四光束动态干涉场中,峰值强度比原始激光光束和双光束干涉场中的峰值强度要高,因此建议将它们用于用激光辐射处理平面物体,使干涉最大值沿物体表面移动。随着四束干涉光束的传播方向绕纵轴发生成对的方位角位移,就会形成一个动态干涉场,其周期性结构的最大值会周期性地平滑改变其形状,从单元到带状,再从带状到单元。在方向对的不同速度下,最大值的干涉结构绕纵轴旋转。因此,该场可用于生物组织的治疗效果以及悬浮液和乳液中微颗粒的混合。由于所有这些干涉场的局部最大强度都有几微米的尺寸,同时其值超过了初始光束的最大强度,因此这些场在横截面上是梯度的,因此不仅可用于激光照射,还可用于移动微颗粒组合,包括分选和改变浓度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Formation of multibeam dynamic gradient interference light fields with refractive optical elements
This paper presents methods for the formation and properties of light fields that controllably vary in time and space, obtained as a result of the interference of three or four coherent light beams using refractive optical elements. The formation of three-beam and four-beam interference fields is carried out using trihedral and tetrahedral glass pyramids respectively. The possibility of the interference field displacement in the transverse plane is ensured by devices for controlled phase changes of at least two of the interfering beams. The directions of propagation of these beams do not lie in the same plane with the optical axis of the original beam incident on the pyramid. In threeand four-beam dynamic interference fields the peak intensity values are higher than in the original laser beams and two-beam interference fields, so it is advisable to use them for processing flat objects with laser radiation, moving the interference maxima along the surface of the object. With a pairwise azimuthal displacement of the propagation directions of four interfering beams around the longitudinal axis, a dynamic interference field is formed, the periodically structured maxima of which cyclically smoothly change their shape from cells to band and back. At different speeds of pairs of directions the interference structure of the maxima rotates around the longitudinal axis. Therefore, this field can be used for therapeutic effects on biological tissues and for mixing microparticles in suspensions and emulsions. Since the local maxima of the intensity of all these interference fields have dimensions of the order of several micrometers while exceeding in value the maximum intensity of the initial light beam, these fields in the cross section are gradient and therefore can be used not only for laser exposure, but also for moving ensembles of microparticles including for sorting and changing concentration.
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