EXPRESS:用于拉曼光谱临床应用的非接触式光纤探针。

IF 2.2 3区 化学 Q2 INSTRUMENTS & INSTRUMENTATION
Sean Fitzgerald, Eric Marple, Jay Werkhaven, Anita Mahadevan-Jansen
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引用次数: 0

摘要

拉曼光谱(RS)的临床应用通常依赖于直接与组织部位接触的光纤探针。这些设备的直径很小,使它们能够在狭窄的体腔中导航,并无缝地集成到常规医疗器械中。然而,传统的RS光纤探头在非接触操作时,由于收集效率降低和较大的激光光斑尺寸限制了空间精度,性能受到影响。为了解决这些限制,本文提出了一种新的RS探针设计,该探针可以在探针尖端使用微型透镜有效地收集指纹(FP)和拉曼光谱的高波数(HW)区域,这些区域与目标组织相偏移。开发过程从随机光传播模拟开始,作为与标准RS探头设计相比,该设备预期性能改进的基础,然后进行实验验证。透镜由多种材料制成,包括熔融二氧化硅、石英、蓝宝石和氟化钙,以评估透镜畸变发射对FP和HW光谱区域组织拉曼特征分析的影响。使用每种类型的晶体从体内组织中报告了信号质量指标,表明晶体透镜在双区域RS分析中最好地保存了组织产生的弱拉曼信号。尽管如此,理想的透镜类型最终将取决于材料特性和组织检测所需的光谱区域。在非接触式操作中,与传统RS探头相比,该装置的信号强度增加了90%,空间选择性提高了4倍。最后,描述了非接触式探头的一个实施例,以展示临床兼容的原型,该原型包含用于在体内使用期间定位引导的广角相机模块。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Noncontact Fiber Optic Probe for Clinical Applications of Raman Spectroscopy.

Clinical applications of Raman spectroscopy (RS) typically rely on fiber optic probes that directly interface with the tissue site. These devices are designed with small diameters, enabling them to navigate narrow body cavities and seamlessly integrate into routine medical instruments. However, the performance of conventional RS fiber probes suffers during noncontact operation due to decreased collection efficiency and a larger laser spot size that restricts spatial precision. To address these limitations, a novel RS probe design is presented here that can efficiently collect both fingerprint (FP) and high-wavenumber (HW) regions of the Raman spectrum at an offset from the target tissue using a miniature lens at the probe tip. The development process began with stochastic light propagation simulations that served as a foundation for the device's expected performance improvements compared to a standard RS probe design, which were then experimentally verified. Lenses were fabricated from various materials, including fused silica, quartz, sapphire, and calcium fluoride, to assess the impact of aberrant lens emissions on the analysis of tissue Raman features within the FP and HW spectral regions. Signal quality metrics are reported from in vivo tissue using each type of lens, demonstrating that crystalline lenses best preserve the weak Raman signal generated by tissues during dual-region RS analysis. Still, the ideal lens type will ultimately depend on material characteristics and which spectral region is required for tissue interrogation. This device demonstrated a 90% increase in signal intensity and a four-fold improvement in spatial selectivity compared to a conventional RS probe during noncontact operation. Finally, one embodiment of the noncontact probe is described to showcase a clinically compatible prototype, which incorporates a widefield camera module for positioning guidance during in vivo use.

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来源期刊
Applied Spectroscopy
Applied Spectroscopy 工程技术-光谱学
CiteScore
6.60
自引率
5.70%
发文量
139
审稿时长
3.5 months
期刊介绍: Applied Spectroscopy is one of the world''s leading spectroscopy journals, publishing high-quality peer-reviewed articles, both fundamental and applied, covering all aspects of spectroscopy. Established in 1951, the journal is owned by the Society for Applied Spectroscopy and is published monthly. The journal is dedicated to fulfilling the mission of the Society to “…advance and disseminate knowledge and information concerning the art and science of spectroscopy and other allied sciences.”
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