Averett Lacey A, Griffiths Peter R, Nishikida Koichi
Department of Chemistry, University of Idaho, Moscow, Idaho 83844-2343, USA.
Anal Chem. 2008 Apr 15;80(8):3045-9. doi: 10.1021/ac7025892. Epub 2008 Mar 15.
Attenuated total reflection (ATR) spectroscopy is now the most popular sampling technique for the measurement of infrared spectra of condensed phase samples. Most practitioners of ATR spectroscopy use the equation for depth of penetration, d(p), to estimate the path length of the evanescent wave through the sample. However, the effective path length, d(e), of the evanescent wave in an ATR measurement, i.e., the equivalent path length in a transmission measurement that would lead to an absorption band of the same intensity, is a more accurate metric than d(p). In measurements designed to obtain the absorptivity of bands in the spectrum of a strongly absorbing viscous liquid, we have shown that the refractive index used in the expressions for d(e) must be modified to take into account the effect of anomalous dispersion before accurate effective path lengths and band absorptivities can be measured.
衰减全反射(ATR)光谱法如今是测量凝聚相样品红外光谱最常用的采样技术。大多数ATR光谱法的从业者使用穿透深度d(p)的公式来估算倏逝波穿过样品的路径长度。然而,在ATR测量中,倏逝波的有效路径长度d(e),即透射测量中能产生相同强度吸收带的等效路径长度,是比d(p)更准确的度量指标。在旨在获取强吸收粘性液体光谱中各谱带吸光率的测量中,我们已经表明,在能够测量准确的有效路径长度和谱带吸光率之前,用于d(e)表达式中的折射率必须进行修正,以考虑反常色散的影响。