Experimental demonstration of tunable refractometer based on orbital angular momentum of longitudinally structured light

被引:0
作者
Ahmed H. Dorrah
Michel Zamboni-Rached
Mo Mojahedi
机构
[1] University of Toronto,Edward S. Rogers Sr. Department of Electrical and Computer Engineering
[2] University of Campinas,School of Electrical and Computer Engineering
来源
Light: Science & Applications | / 7卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
The index of refraction plays a decisive role in the design and classification of optical materials and devices; therefore, its proper and accurate determination is essential. In most refractive index (RI) sensing schemes, however, there is a trade-off between providing high-resolution measurements and covering a wide range of RIs. We propose and experimentally demonstrate a novel mechanism for sensing the index of refraction of a medium by utilizing the orbital angular momentum (OAM) of structured light. Using a superposition of co-propagating monochromatic higher-order Bessel beams with equally spaced longitudinal wavenumbers, in a comb-like setting, we generate non-diffracting rotating light structures in which the orientation of the beam’s intensity profile is sensitive to the RI of the medium (here, a fluid). In principle, the sensitivity of this scheme can exceed ~2700°/RI unit (RIU) with a resolution of ~10-5\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$10^{ - 5}$$\end{document} RIU. Furthermore, we show how the unbounded degrees of freedom associated with OAM can be deployed to offer a wide dynamic range by generating structured light that evolves into different patterns based on the change in RI. The rotating light structures are generated by a programmable spatial light modulator. This provides dynamic control over the sensitivity, which can be tuned to perform coarse or fine measurements of the RI in real time. This, in turn, allows high sensitivity and resolution to be achieved simultaneously over a very wide dynamic range, which is a typical trade-off in all RI sensing schemes. We thus envision that this method will open new directions in refractometry and remote sensing.
引用
收藏
相关论文
共 124 条
  • [1] Fan XD(2008)Sensitive optical biosensors for unlabeled targets: a review Anal. Chim. Acta 620 8-26
  • [2] Moreels E(1984)Laser light refractometer Appl. Opt. 23 3010-3013
  • [3] de Greef C(1992)Measurement of the refractive index of liquid using laser beam displacement Appl. Opt. 31 6690-6694
  • [4] Finsy R(1989)Laser refractometry of liquids with a diffraction grating Opt. Commun. 72 148-152
  • [5] Nemoto S(2007)Measurement of the refractive index of distilled water from the near-infrared region to the ultraviolet region Appl. Opt. 46 3811-3820
  • [6] Makdisi Y(2003)Characteristics of absorption and dispersion for rubidium D Opt. Express 11 1338-1344
  • [7] Zaidi AA(2008) lines with the modulation transfer spectrum IEEE Photon Technol. Lett. 20 1360-1362
  • [8] Bhatia KS(2010)A compact three degrees-of-freedom motion sensor based on the laser-self-mixing effect Science 330 1081-1084
  • [9] Daimon M(2015)Probing the ultimate limit of fiber-optic strain sensing Sci. Rep. 5 537-540
  • [10] Masumura A(2013)Detecting lateral motion using light’s orbital angular momentum Science 341 e1501349-535