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Cavity ring-down spectroscopy of liquid samples using standard cuvettes at normal incidence.

机译:使用标准比色皿以垂直入射的方式对液体样品进行腔衰荡光谱分析。

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摘要

Cavity ring-down (CRD) spectroscopy has emerged as a sensitive analytical technique. In this method, a laser pulse is injected through one of two highly-reflective mirrors which form a stable optical cavity and the rate that the light leaves the cavity is monitored by a detector placed behind the second mirror.;In this research a CRD spectrometer has been designed and constructed. The light exiting the cavity is collected via a fiber optic cable which is then directed toward a photo multiplier tube (PMT) detector. The signal is digitized and averaged by an oscilloscope and the data are transferred by an IEEE 488 interface to a personal computer where the data are analyzed. Instrument command and data acquisition are controlled by a Visual Basic computer program. A short review of several attempts to measure liquid samples using CRD spectroscopy is presented; most discuss the necessity for the incorporation of Brewster's angle at the liquid interface. This study integrates a 1 cm standard quartz cuvette at normal incidence. It was determined that there are significant losses from scattering and reflection; however, these losses were not so large as to negate the efficacy of the technique. The hypothesis tested here is that the light "lost" as reflections are collected by the cavity mirrors and redirected back into the cavity.;Rhodamine 6G was used as the primary model absorber in these studies. Absorbance measurements were extracted from the measured ring-down times and a detection limit was obtained. Four cavity lengths were constructed to determine the effect on the scattering losses with varying cavity lengths. The calculated detection limit for the CRD spectrometer used in this study was found to be in the range of 4-5 nM. It was found that the detection limit of the CRD spectrometer was 36 times lower than that of the commercial instrument. Aligning the cavity mirrors at longer cavity lengths proved to be more difficu however, there were no significant additional losses observed by incorporating longer cavities.
机译:腔衰荡(CRD)光谱已成为一种敏感的分析技术。在这种方法中,通过两个高反射镜之一注入激光脉冲,该反射镜形成一个稳定的光学腔,并通过位于第二个反射镜后面的检测器来监测光离开腔的速率。已经设计和建造。离开空腔的光通过光缆收集,然后被引向光电倍增管(PMT)检测器。信号通过示波器进行数字化和平均,数据通过IEEE 488接口传输到个人计算机,然后在计算机上分析数据。仪器命令和数据采集由Visual Basic计算机程序控制。简要回顾了几种使用CRD光谱法测量液体样品的尝试;大多数人讨论了在液体界面引入布鲁斯特角的必要性。这项研究在垂直入射时集成了一个1厘米标准石英比色皿。已确定散射和反射会造成重大损失;然而,这些损失并没有使该技术的效力无效。此处测试的假设是,当反射被腔镜反射时“丢失”,并重定向回腔中。在这些研究中,若丹明6G被用作主要的模型吸收剂。从测得的衰荡时间中提取吸光度测量值,并获得检测极限。构造了四个腔长度,以确定随腔长度变化对散射损耗的影响。发现本研究中使用的CRD光谱仪的计算出的检出限为4-5 nM。发现CRD光谱仪的检出限比市售仪器低36倍。在更长的腔体长度处对准腔镜被证明更加困难。但是,通过合并更长的空腔,没有观察到明显的额外损失。

著录项

  • 作者

    Culbertson, Bryan James.;

  • 作者单位

    Mississippi State University.;

  • 授予单位 Mississippi State University.;
  • 学科 Chemistry General.;Chemistry Analytical.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 106 p.
  • 总页数 106
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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