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增强光束缚结构上的“牵引光束”拉力。

Enhancement of the 'tractor-beam' pulling force on an optically bound structure.

作者信息

Damková Jana, Chvátal Lukáš, Ježek Jan, Oulehla Jindřich, Brzobohatý Oto, Zemánek Pavel

机构信息

Institute of Scientific Instruments of the CAS, v.v.i., Královopolská 147, Brno 612 64, Czech Republic.

出版信息

Light Sci Appl. 2018 Jan 12;7:17135. doi: 10.1038/lsa.2017.135. eCollection 2018.

Abstract

Recently, increasing attention has been devoted to mastering a new technique of optical delivery of micro-objects tractor-beam'. Such beams have uniform intensity profiles along their propagation direction and can exert a negative force that, in contrast to the familiar pushing force associated with radiation pressure, pulls the scatterer toward the light source. It was experimentally observed that under certain circumstances, the pulling force can be significantly enhanced if a non-spherical scatterer, for example, a linear chain of optically bound objects, is optically transported. Here we demonstrate that motion of two optically bound objects in a tractor beam strongly depends on theirs mutual distance and spatial orientation. Such configuration-dependent optical forces add extra flexibility to our ability to control matter with light. Understanding these interactions opens the door to new applications involving the formation, sorting or delivery of colloidal self-organized structures.

摘要

最近,越来越多的注意力被投入到掌握一种用于微物体“牵引光束”光学传输的新技术上。这种光束沿其传播方向具有均匀的强度分布,并且能够施加一种负力,与与辐射压力相关的常见推力相反,该负力将散射体拉向光源。实验观察到,在某些情况下,如果一个非球形散射体,例如一串光学束缚物体的线性链,进行光学传输,拉力可以显著增强。在这里,我们证明了两个光学束缚物体在牵引光束中的运动强烈依赖于它们的相互距离和空间取向。这种与配置相关的光学力为我们用光控制物质的能力增添了额外的灵活性。理解这些相互作用为涉及胶体自组织结构的形成、分类或传输的新应用打开了大门。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2810/6107043/a0c6754e816b/lsa2017135f1.jpg

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