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利用反法拉第效应产生具有多个能量振荡的超长无衍射磁化光束。

Creation of an ultralong non-diffracting magnetization light beam with multiple energy oscillations using the inverse Faraday effect.

出版信息

Opt Lett. 2019 Nov 15;44(22):5537-5540. doi: 10.1364/OL.44.005537.

Abstract

Diffraction and scatter effects are two big challenges that make the magnetization induced by a light beam endure a finite propagation distance and vulnerable to the defect of magneto-optic film. Here we propose a method to overcome both challenges by creating an ultralong non-diffracting (UND) magnetization light beam with multiple energy oscillations. By simply increasing the number of energy oscillations using the optical pen, the magnetization light beam can propagate over an ultralong distance without significant divergence. Besides, as a kind of non-diffracting light beam, this magnetization light beam possesses the property of self-healing, which makes it robust to the scatter effect. This Letter demonstrates for the first time, to the best of our knowledge, the creation of an UND magnetization beam, which may open a new avenue for high-density all-optical magnetic recording and atomic trapping, as well as confocal and magnetic resonance microscopy.

摘要

衍射和散射效应对光束的磁化强度产生影响,使光束的传播距离有限,并容易受到磁光膜缺陷的影响。在这里,我们提出了一种通过创建具有多个能量振荡的超长无衍射(UND)磁化光束来克服这两个挑战的方法。通过使用光学笔简单地增加能量振荡的数量,磁化光束可以在没有明显发散的情况下传播超远距离。此外,作为一种无衍射光束,这种磁化光束具有自修复特性,使其对散射效应具有鲁棒性。本文首次在我们所知的范围内展示了超长无衍射磁化光束的创建,这可能为高密度全光磁记录和原子捕获以及共焦和磁共振显微镜开辟新的途径。

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