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Determining the Spectral Resolution of a Charge-Coupled Device (CCD) Raman Instrument

机译:确定电荷耦合器件(CCD)拉曼仪器的光谱分辨率

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摘要

A new method based on dispersion equations is described to express the spectral resolution of an applied charge-coupled device (CCD) Czerny-Turner Raman instrument entirely by means of one equation and principal factors determined by the actual setup. The factors involved are usual quantities such as wavenumber values for the laser and the Raman band, the diffraction grating groove density, the second focal length, the angle between the incident and the diffracted light, and the full width at half-maximum (FWHM) value of the signal on the detector. A basic formula is derived to estimate the spectral resolution of the Raman instrument. An essential feature of the new method is a proposed way to compensate for non-ideality (diffractions, aberrations, etc.) by use of a hyperbola model function to describe the relationship between the width of the entrance slit and the image signal width on the CCD. The model depends on the spectrometer magnification and a diffraction and aberration compensation factor denoted as A. A could be approximated as a constant that can be determined by the experimental method. The validity of the new expression has been examined by measuring the band width of the 1332.4 cm(-1) diamond Raman fundamental band, excited with two quite different wavelengths (a deep ultraviolet 257.3 nm laser line and a visible green 514.5 nm line). A low pressure mercury line at 265.2042 nm also was applied to give further verification of the given expression. A useful method to find true Raman band widths is also provided. A final finding was that the known significant changes in spectral resolution along the Raman shift axis make static recording and synchronous (extended) scanning modes differ significantly with respect to their resolution properties; this feature has been often overlooked in many contemporary works reporting Raman spectra. A reason for this is that many Raman bands are too wide to show the effect.
机译:描述了一种基于色散方程的新方法,该方法完全通过一个方程和由实际设置确定的主因子来表示所应用的电荷耦合器件(CCD)Czerny-Turner Raman仪器的光谱分辨率。所涉及的因素是通常的数量,例如激光器和拉曼波段的波数值,衍射光栅凹槽密度,第二焦距,入射光和衍射光之间的角度以及半峰全宽(FWHM)检测器上信号的值。得出一个基本公式来估计拉曼仪器的光谱分辨率。该新方法的本质特征是提出了一种通过使用双曲线模型函数来描述入射狭缝宽度与图像信号宽度之间关系的双曲线模型函数来补偿非理想性(衍射,像差等)的方法。 CCD。该模型取决于光谱仪的放大倍率以及表示为A的衍射和像差补偿因子。A可以近似表示为可以通过实验方法确定的常数。通过测量1332.4 cm(-1)金刚石拉曼基带的带宽来检验新表达式的有效性,该带宽用两个完全不同的波长(深紫外线257.3 nm激光线和可见绿色514.5 nm线)激发。还施加了265.2042 nm的低压汞线,以进一步验证给定的表达式。还提供了找到真实拉曼带宽的有用方法。最后的发现是,沿拉曼位移轴的光谱分辨率的已知显着变化使静态记录和同步(扩展)扫描模式的分辨率特性显着不同。在许多报告拉曼光谱的当代作品中,此功能经常被忽略。其原因是许多拉曼频带太宽而无法显示效果。

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  • 作者

    Liu Chuan; Berg Rolf W.;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 eng
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