New achievements in orbital angular momentum beam characterization using a Hartmann wavefront sensor and the Kirkpatrick-Baez active optical system KAOS.

IF 2.5 3区 物理与天体物理 Journal of Synchrotron Radiation Pub Date : 2024-09-01 Epub Date: 2024-08-16 DOI:10.1107/S160057752400626X
Luka Novinec, Matteo Pancaldi, Flavio Capotondi, Giovanni De Ninno, Francesco Guzzi, George Kourousias, Emanuele Pedersoli, Barbara Ressel, Benedikt Rösner, Alberto Simoncig, Marco Zangrando, Michele Manfredda
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Abstract

Advances in physics have been significantly driven by state-of-the-art technology, and in photonics and X-ray science this calls for the ability to manipulate the characteristics of optical beams. Orbital angular momentum (OAM) beams hold substantial promise in various domains such as ultra-high-capacity optical communication, rotating body detection, optical tweezers, laser processing, super-resolution imaging etc. Hence, the advancement of OAM beam-generation technology and the enhancement of its technical proficiency and characterization capabilities are of paramount importance. These endeavours will not only facilitate the use of OAM beams in the aforementioned sectors but also extend the scope of applications in diverse fields related to OAM beams. At the FERMI Free-Electron Laser (Trieste, Italy), OAM beams are generated either by tailoring the emission process on the undulator side or, in most cases, by coupling a spiral zone plate (SZP) in tandem with the refocusing Kirkpatrick-Baez active optic system (KAOS). To provide a robust and reproducible workflow to users, a Hartmann wavefront sensor (WFS) is used for both optics tuning and beam characterization. KAOS is capable of delivering both tightly focused and broad spots, with independent control over vertical and horizontal magnification. This study explores a novel non-conventional `near collimation' operational mode aimed at generating beams with OAM that employs the use of a lithographically manufactured SZP to achieve this goal. The article evaluates the mirror's performance through Hartmann wavefront sensing, offers a discussion of data analysis methodologies, and provides a quantitative analysis of these results with ptychographic reconstructions.

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利用哈特曼波前传感器和 Kirkpatrick-Baez 主动光学系统 KAOS 进行轨道角动量光束鉴定的新成果。
最先进的技术极大地推动了物理学的发展,而在光子学和 X 射线科学领域,这就要求具备操纵光束特性的能力。轨道角动量(OAM)光束在超大容量光通信、旋转体探测、光学镊子、激光加工、超分辨率成像等多个领域大有可为。因此,OAM 光束生成技术的进步及其技术熟练程度和表征能力的提高至关重要。这些努力不仅将促进 OAM 光束在上述领域的应用,还将扩大与 OAM 光束相关的各个领域的应用范围。在 FERMI 自由电子激光器(意大利的里雅斯特)上,OAM 光束是通过调整起爆器侧的发射过程产生的,或者在大多数情况下,是通过将螺旋区板(SZP)与重新聚焦的 Kirkpatrick-Baez 有源光学系统(KAOS)耦合在一起产生的。为了向用户提供稳健、可重复的工作流程,哈特曼波前传感器(WFS)被用于光学调整和光束鉴定。KAOS 既能提供紧聚焦光斑,也能提供宽光斑,并能独立控制垂直和水平放大率。本研究探讨了一种新颖的非常规 "近准直 "操作模式,该模式旨在利用光刻制造的 SZP 生成具有 OAM 的光束,从而实现这一目标。文章通过哈特曼波前传感对反射镜的性能进行了评估,对数据分析方法进行了讨论,并通过层析重构对这些结果进行了定量分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Synchrotron Radiation
Journal of Synchrotron Radiation INSTRUMENTS & INSTRUMENTATIONOPTICS&-OPTICS
CiteScore
5.60
自引率
12.00%
发文量
289
审稿时长
1 months
期刊介绍: Synchrotron radiation research is rapidly expanding with many new sources of radiation being created globally. Synchrotron radiation plays a leading role in pure science and in emerging technologies. The Journal of Synchrotron Radiation provides comprehensive coverage of the entire field of synchrotron radiation and free-electron laser research including instrumentation, theory, computing and scientific applications in areas such as biology, nanoscience and materials science. Rapid publication ensures an up-to-date information resource for scientists and engineers in the field.
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