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Directly writing binary multi-sector phase plates on fused silica using femtosecond laser

Published online by Cambridge University Press:  05 March 2018

Li Zhou*
Affiliation:
Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
Youen Jiang
Affiliation:
Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
Peng Zhang
Affiliation:
Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
Wei Fan
Affiliation:
Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
Xuechun Li
Affiliation:
Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
*
Correspondence to: L. Zhou, 390 Qinghe Road, Jiading, Shanghai 201800, China. Email: zhoul@siom.ac.cn

Abstract

Light carrying orbital angular momentum (OAM) has a spatial distribution of intensity and phase, which attracts considerable interest regarding several potential applications in optical and quantum scenarios recently. Spiral phase plates are commonly used elements for generating and analyzing OAM states. In this study, we put forward a method of directly writing binary multi-sector phase plates using the femtosecond laser. These phase plates are engraved on fused silica, which could be applied in high-intensity regimes. Different binary multi-sector phase plates were generated with high quality, which were proved by the observation of their structures, accompanied by detecting the beam patterns with the Gaussian beams. The proposed method provides a crucial basis for the rapid manufacturing of phase plates using convenient equipment, which can generate the superposition OAM states and may lead to the capability of measuring the high-dimensional entanglement.

Information

Type
Research Article
Creative Commons
Creative Common License - CCCreative Common License - BY
This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted re-use, distribution, and reproduction in any medium, provided the original work is properly cited.
Copyright
© The Author(s) 2018
Figure 0

Figure 1. Phase patterns for the OAM superposition states. The black and gray zones indicate regions of 0 and $\unicode[STIX]{x1D70B}$ phase imprints, respectively.

Figure 1

Figure 2. Setup of direct laser writing. $\unicode[STIX]{x1D706}/2$: half-wave plate, PBS: polarization beam splitter, D: dump, M: mirror, CL: cylindrical lens, S: sample.

Figure 2

Figure 3. Images of fused silica binary multi-sector phase plate. (a) $|\!1\!\rangle +|\!-1\!\rangle$; (b) $|\!5\!\rangle +|\!-5\!\rangle$; (c) $|\!10\!\rangle +|\!-10\!\rangle$; (d) $|\!20\!\rangle +|\!-20\!\rangle$.

Figure 3

Figure 4. Measured intensity profiles of various states of the sample at a distance of 255 mm. The images have a resolution of $2753\times 2192$ in pixel with a pixel size of $4.5~\unicode[STIX]{x03BC}\text{m}\times 4.5~\unicode[STIX]{x03BC}\text{m}$. (a) $|\!1\!\rangle +|\!-1\!\rangle$; (b) $|\!5\!\rangle +|\!-5\!\rangle$; (c) $|\!10\!\rangle +|\!-10\!\rangle$; (d) $|\!20\!\rangle +|\!-20\!\rangle$.

Figure 4

Figure 5. Calculated intensity profiles of $|\!5\!\rangle +|\!-5\!\rangle$ under different radii of the overwritten area. The waist radius of the input Gaussian beam is 2 mm. (a) $100~\unicode[STIX]{x03BC}\text{m}$; (b) $200~\unicode[STIX]{x03BC}\text{m}$; (c) $400~\unicode[STIX]{x03BC}\text{m}$; (d) $600~\unicode[STIX]{x03BC}\text{m}$; (e) $800~\unicode[STIX]{x03BC}\text{m}$; (f) $1000~\unicode[STIX]{x03BC}\text{m}$.

Figure 5

Figure 6. Calculated intensity profiles of $|\!5\!\rangle +|\!-5\!\rangle$ under different errors of the phase difference. (a) 0; (b) $0.1\unicode[STIX]{x1D70B}$ (c) $0.2\unicode[STIX]{x1D70B}$; (d) $0.3\unicode[STIX]{x1D70B}$; (e) $0.4\unicode[STIX]{x1D70B}$; (f) $0.5\unicode[STIX]{x1D70B}$.

Figure 6

Figure 7. Calculated intensity profiles of $|\!5\!\rangle +|\!-5\!\rangle$ under different transmissivity ratios between adjacent sectors. (a) 0.8; (b) 0.6; (c) 0.4; (d) 0.2.

Figure 7

Figure 8. Measured intensity profile of the superposition modes of $|\!5\!\rangle +|\!-5\!\rangle$ at a distance of 9 m. The image has a resolution of $2753\times 2192$ in pixel with a pixel size of $4.5~\unicode[STIX]{x03BC}\text{m}\times 4.5~\unicode[STIX]{x03BC}\text{m}$.