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Design of a miniaturized integrated spectrometer for spectral tissue sensing

机译:用于光谱组织感测的小型集成光谱仪的设计

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摘要

Minimally-invasive image-guided procedures become increasingly used by physicians to obtain real-time characterization feedback from the tissue at the tip of their interventional device (needle, catheter, endoscopic or laparoscopic probes, etc...) which can significantly improve the outcome of diagnosis and treatment, and ultimately reduce cost of the medical treatment. Spectral tissue sensing using compact photonic probes has the potential to be a valuable tool for screening and diagnostic purposes, e.g. for discriminating between healthy and tumorous tissue. However, this technique requires a low-cost broadband miniature spectrometer so that it is commercially viable for screening at point-of-care locations such as physicians' offices and outpatient centers. Our goal is therefore to develop a miniaturized spectrometer based on diffractive optics that combines the functionalities of a visibleear-infrared (VIS/NIR) and shortwave-infrared (SWIR) spectrometer in one very compact housing. A second goal is that the hardware can be produced in high volume at low cost without expensive time consuming alignment and calibration steps. We have designed a miniaturized spectrometer which operates both in the visibleear-infrared and shortwave-infrared wavelength regions ranging from 400 nm to 1700 nm. The visibleear-infrared part of the spectrometer is designed for wavelengths from 400 nm to 800 nm whereas the shortwave-infrared segment ranges from 850 nm to 1700 nm. The spectrometer has a resolution of 6 nm in the visibleear-infrared wavelength region and 10 nm in the shortwave-infrared. The minimum SNR of the spectrometer for the intended application is about 151 in the VIS/NIR range and 6000 for SWIR. In this paper, the modelling and design, and power budget analysis of the miniaturized spectrometer are presented. Our work opens a door for future affordable micro-spectrometers which can be integrated with smartphones and tablets, and used for point-of-care applications. As next steps in the development, we will manufacture the different optical components and experimentally characterize the spectrometer device in more detail.
机译:医生越来越多地使用微创图像引导程序来从其介入设备(针,导管,内窥镜或腹腔镜探头等)尖端的组织获取实时表征反馈,从而可以显着改善结果诊断和治疗,最终降低医疗费用。使用紧凑型光子探针的光谱组织感测有可能成为用于筛选和诊断目的的有价值的工具,例如区分健康组织和肿瘤组织。但是,该技术需要低成本的宽带微型光谱仪,因此在商业上可在诸如医生办公室和门诊中心等医疗点进行筛查。因此,我们的目标是在一个非常紧凑的外壳中开发一种基于衍射光学的微型光谱仪,该光谱仪将可见/近红外(VIS / NIR)和短波红外(SWIR)光谱仪的功能结合在一起。第二个目标是可以低成本大量生产硬件,而无需花费大量时间进行对准和校准步骤。我们设计了一种小型化的光谱仪,该光谱仪在可见光/近红外和短波红外波长范围为400 nm至1700 nm的范围内工作。光谱仪的可见/近红外部分设计用于400 nm至800 nm的波长,而短波红外段的范围为850 nm至1700 nm。该光谱仪在可见/近红外波长范围内的分辨率为6 nm,在短波红外范围内的分辨率为10 nm。光谱仪在预期的应用中的最小SNR在VIS / NIR范围内约为151,对于SWIR则为6000。本文介绍了小型化光谱仪的建模,设计和功率预算分析。我们的工作为将来可负担得起的微谱仪打开了一扇大门,该谱仪可以与智能手机和平板电脑集成在一起,并用于即时医疗应用。作为开发的下一步,我们将制造不同的光学组件,并在实验上更详细地表征光谱仪设备。

著录项

  • 来源
    《Optical modelling and design IV》|2016年|98890S.1-98890S.9|共9页
  • 会议地点 Brussels(BE)
  • 作者单位

    Vrije Universiteit Brussel, Faculty of Engineering, Dept. of Applied Physics and Photonics (TONA), Brussels Photonics Team, B-PHOT, Pleinlaan 2, B-1050 Brussel, Belgium;

    Anteryon Optical Solutions B.V., Zwaanstraat 2-A, 5651 CA Eindhoven, The Netherlands;

    Vrije Universiteit Brussel, Faculty of Engineering, Dept. of Applied Physics and Photonics (TONA), Brussels Photonics Team, B-PHOT, Pleinlaan 2, B-1050 Brussel, Belgium;

    Anteryon Optical Solutions B.V., Zwaanstraat 2-A, 5651 CA Eindhoven, The Netherlands;

    Anteryon Optical Solutions B.V., Zwaanstraat 2-A, 5651 CA Eindhoven, The Netherlands;

    Vrije Universiteit Brussel, Faculty of Engineering, Dept. of Applied Physics and Photonics (TONA), Brussels Photonics Team, B-PHOT, Pleinlaan 2, B-1050 Brussel, Belgium;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Miniature spectrometer; visibleear-infrared; VIS/NIR; shortwave-infrared; SWIR; design; spectral tissue sensing;

    机译:微型光谱仪;可见/近红外; VIS / NIR;短波红外SWIR;设计;光谱组织传感;

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