Towards a sensing model using a random laser combined with diffuse reflectance spectroscopy

IF 2.9 2区 医学 Q2 BIOCHEMICAL RESEARCH METHODS
Dongqin Ni, Florian Klämpfl, Michael Schmidt, Martin Hohmann
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引用次数: 0

Abstract

The previous research proves that the random laser emission reflects not only the scattering properties but also the absorption properties. The random laser is therefore considered a potential tool for optical properties sensing. Although the qualitative sensing using the random laser is extensively investigated, a quantitative measurement of optical properties is still rare. In this study, a generalized mathematical quantitative model using random laser combined with diffuse reflectance spectroscopy is proposed for optical sensing in turbid media. This model describes the gain effect of the active medium and the optical properties effect of the passive medium separately. Rhodamine 6G is used as the active medium. Intralipid and ink are employed to demonstrate the effect of the scattering and absorption, respectively. The peak wavelength shift of the random laser is proved to be an ideal sensing parameter for this sensing model. It is also revealed that the scaling parameters in the sensing model are interrelated and can be simplified to one. With this combined model, the direct sensing of optical properties in diverse turbid media is promising.
使用随机激光结合漫反射光谱法建立传感模型
先前的研究证明,随机激光发射不仅反映了散射特性,还反映了吸收特性。因此,随机激光被认为是一种潜在的光学特性传感工具。虽然利用随机激光进行定性传感的研究已经非常广泛,但对光学特性进行定量测量的研究仍然很少。在这项研究中,我们提出了一个使用随机激光结合漫反射光谱法的通用数学定量模型,用于浑浊介质中的光学传感。该模型分别描述了有源介质的增益效应和无源介质的光学特性效应。罗丹明 6G 被用作活性介质。内脂和墨水分别用来证明散射和吸收的影响。随机激光的峰值波长偏移被证明是该传感模型的理想传感参数。研究还发现,传感模型中的缩放参数是相互关联的,可以简化为一个。有了这一组合模型,直接传感不同浊度介质中的光学特性将大有可为。
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
Biomedical optics express
Biomedical optics express BIOCHEMICAL RESEARCH METHODS-OPTICS
CiteScore
6.80
自引率
11.80%
发文量
633
审稿时长
1 months
期刊介绍: The journal''s scope encompasses fundamental research, technology development, biomedical studies and clinical applications. BOEx focuses on the leading edge topics in the field, including: Tissue optics and spectroscopy Novel microscopies Optical coherence tomography Diffuse and fluorescence tomography Photoacoustic and multimodal imaging Molecular imaging and therapies Nanophotonic biosensing Optical biophysics/photobiology Microfluidic optical devices Vision research.
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