Boisvert Jean-Sébastien, Loranger Sébastien, Kashyap Raman
Department of Engineering Physics, Ecole Polytechnique Montréal, 2900 Édouard-Montpetit, Montreal, QC, H3T 1J4, Canada.
Department of Electrical Engineering, Poly-Grames, Ecole Polytechnique Montréal, 2900 Édouard-Montpetit, Montreal, QC, H3T 1J4, Canada.
Sci Rep. 2023 Aug 22;13(1):13717. doi: 10.1038/s41598-023-40909-9.
In this work we demonstrate the integration of a spectrometer directly into smartphone screen by femtosecond laser inscription of a weak Raman-Nath volume grating either into the Corning Gorilla glass screen layer or in the tempered aluminosilicate glass protector screen placed in front of the phone camera. Outside the thermal accumulation regime, a new writing regime yielding positive refractive index change was found for both glasses which is fluence dependent. The upper-bound threshold for this thermal-accumulation-less writing regime was found for both glasses and were, respectively at a repetition rate less than 150 kHz and 101 kHz for fluence of 8.7 × 10 J/m and 1.4 × 10 J/m. A weak volume Raman-Nath grating of dimension 0.5 by 3 mm and 3 μm pitch was placed in front of a Samsung Galaxy S21 FE cellphone to record the spectrum using the 2nd diffraction order. This spectrometer covers the visible band from 401 to 700 nm with a 0.4 nm/pixel detector resolution and 3 nm optical resolution. It was used to determine the concentration detection limit of Rhodamine 6G in water which was found to be 0.5 mg/L. This proof of concept paves the way to in-the-field absorption spectroscopy for quick information gathering.
在这项工作中,我们展示了通过飞秒激光在康宁大猩猩玻璃屏幕层或置于手机摄像头前的钢化铝硅酸盐玻璃保护膜中写入弱拉曼 - 纳特体光栅,将光谱仪直接集成到智能手机屏幕中。在热积累区域之外,发现对于这两种玻璃都存在一种新的写入机制,会产生与能量密度相关的正折射率变化。对于这两种玻璃,都找到了这种无热积累写入机制的上限阈值,对于能量密度为8.7×10 J/m²和1.4×10 J/m²的情况,重复率分别低于150 kHz和101 kHz。将尺寸为0.5×3 mm且间距为3μm的弱体拉曼 - 纳特光栅置于三星Galaxy S21 FE手机前,以利用二级衍射记录光谱。该光谱仪覆盖401至700 nm的可见光波段,探测器分辨率为0.4 nm/像素,光学分辨率为3 nm。它被用于测定水中罗丹明6G的浓度检测限,结果为0.5 mg/L。这一概念验证为现场吸收光谱法快速收集信息铺平了道路。