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用于高灵敏度层析干涉测量的多程探测

Multi-pass probing for high-sensitivity tomographic interferometry.

作者信息

Karatodorov Stefan, Lera Roberto, Raclavsky Marek, Lorenz Sebastian, Chaulagain Uddhab, Nejdl Jaroslav

机构信息

ELI Beamlines Center, Institute of Physics ASCR, 252 41, Dolní Břežany, Czech Republic.

FNSPE, Czech Technical University in Prague, 115 19, Prague, Czech Republic.

出版信息

Sci Rep. 2021 Jul 23;11(1):15072. doi: 10.1038/s41598-021-94436-6.

Abstract

Optical probing is an indispensable tool in research and development. In fact, it has always been the most natural way for humankind to explore nature. However, objects consisting of transparent materials with a refractive index close to unity, such as low-density gas jets, are a typical example of samples that often reach the sensitivity limits of optical probing techniques. We introduce an advanced optical probing method employing multiple passes of the probe through the object to increase phase sensitivity, and relay-imaging of the object between individual passes to preserve spatial resolution. An interferometer with four-passes was set up and the concept was validated by tomographic characterization of low-density supersonic gas jets. The results show an evident increase of sensitivity, which allows for the accurate quantitation of fine features such as a shock formed by an obstacle or a barrel shock on the jet boundary in low ambient gas pressures. Despite its limitations in temporal resolution, this novel method has demonstrated an increase in phase sensitivity in transmission, however, it can also be employed to boost the absorption or polarization contrast of weakly interacting objects in both transmission and reflection setups, thus, upgrading the sensitivity of various optical characterization methods.

摘要

光学探测是研发中不可或缺的工具。事实上,它一直是人类探索自然最自然的方式。然而,由折射率接近1的透明材料组成的物体,如低密度气体射流,是经常达到光学探测技术灵敏度极限的样本的典型例子。我们介绍一种先进的光学探测方法,该方法通过让探测器多次穿过物体来提高相位灵敏度,并在各次穿过之间对物体进行中继成像以保持空间分辨率。搭建了一个四程干涉仪,并通过对低密度超音速气体射流的层析表征验证了这一概念。结果显示灵敏度有明显提高,这使得在低环境气压下能够准确量化诸如由障碍物形成的激波或射流边界上的桶形激波等精细特征。尽管其在时间分辨率上存在局限性,但这种新方法已证明在透射中相位灵敏度有所提高,不过,它也可用于在透射和反射设置中提高弱相互作用物体的吸收或偏振对比度,从而提升各种光学表征方法的灵敏度。

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