Molar absorptivities of glucose and other biological molecules in aqueous solutions over the first overtone and combination regions of the near-infrared spectrum

被引:99
作者
Amerov, AK
Chen, J
Arnold, MA [1 ]
机构
[1] Univ Iowa, Dept Chem, Iowa City, IA 52242 USA
[2] Univ Iowa, Opt Sci & Technol Ctr, Iowa City, IA 52242 USA
关键词
molar absorptivity; water displacement; near-infrared spectroscopy;
D O I
10.1366/0003702042336136
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Molar absorptivities are measured for water, glucose, alanine, ascorbate, lactate, triacetin, and urea in the near-infrared spectral region at 37 degreesC. Values are based on the Beer-Lambert law and cover the first overtone (1550-1850 nm; 6450-5400 cm(-1)) and combination (2000-2500 nm; 4000-5000 cm(-1)) spectral windows through aqueous media. Accurate calculations demand accounting for the impact of water displacement upon dissolution of solute. In this regard, water displacement coefficients are measured and reported for each solute. First overtone absorptivities range from 2 to 7 x 10(-5) mM(-1)mm(-1) for all solutes except urea, for which absorptivity values are below 0.5 x 10(-5) mM(-1)mm(-1) across this spectral range. Molar absorptivities over the combination spectral region range from 0.8 to 3.2 x 10(-4) mM(-1)mm(-1), which is a factor of four to five greater than the first overtone absorptivities. Accuracy of the measured values is assessed by comparing calculated or modeled spectra with spectra measured from standard solutions. This comparison reveals accurately modeled spectra in terms of magnitude and position of solute absorption bands. Both actual and modeled spectra from glucose solutions reveal positive and negative absorbance values depending on the measurement wavelength. It is shown that the net absorbance of light is controlled by the magnitude of the absorptivity of glucose compared to the product of the absorptivity of water and the water displacement coefficient for glucose.
引用
收藏
页码:1195 / 1204
页数:10
相关论文
共 23 条
[1]   DETERMINATION OF PHYSIOLOGICAL LEVELS OF GLUCOSE IN AN AQUEOUS MATRIX WITH DIGITALLY FILTERED FOURIER-TRANSFORM NEAR-INFRARED SPECTRA [J].
ARNOLD, MA ;
SMALL, GW .
ANALYTICAL CHEMISTRY, 1990, 62 (14) :1457-1464
[2]   THE ABSORPTION SPECTRA OF LIQUID PHASE H2O, HDO AND D2O FROM 0.7 MU-M TO 10 MU-M [J].
BAYLY, JG ;
KARTHA, VB ;
STEVENS, WH .
INFRARED PHYSICS, 1963, 3 (04) :211-222
[3]   Infrared intensities of liquids .20. The intensity of the OH stretching band of liquid water revisited, and the best current values of the optical constants of H2O(1) at 25 degrees C between 15,000 and 1 cm(-1) [J].
Bertie, JE ;
Lan, ZD .
APPLIED SPECTROSCOPY, 1996, 50 (08) :1047-1057
[4]  
Burmeister J J, 2000, Diabetes Technol Ther, V2, P5, DOI 10.1089/152091500316683
[5]  
Eddy CV, 2001, CLIN CHEM, V47, P1279
[6]   OPTICAL-CONSTANTS OF WATER IN 200-NM TO 200-MUM WAVELENGTH REGION [J].
HALE, GM ;
QUERRY, MR .
APPLIED OPTICS, 1973, 12 (03) :555-563
[7]   Measurement of glucose in water with first-overtone near-infrared spectra [J].
Hazen, KH ;
Arnold, MA ;
Small, GW .
APPLIED SPECTROSCOPY, 1998, 52 (12) :1597-1605
[8]   Models for the wavelength dependence of the index of refraction of water [J].
Huibers, PDT .
APPLIED OPTICS, 1997, 36 (16) :3785-3787
[9]   Influence of temperature on water and aqueous glucose absorption spectra in the near- and mid-infrared regions at physiologically relevant temperatures [J].
Jensen, PS ;
Bak, J ;
Andersson-Engels, S .
APPLIED SPECTROSCOPY, 2003, 57 (01) :28-36
[10]   ITS-90 DENSITY OF WATER FORMULATION FOR VOLUMETRIC STANDARDS CALIBRATION [J].
JONES, FE ;
HARRIS, GL .
JOURNAL OF RESEARCH OF THE NATIONAL INSTITUTE OF STANDARDS AND TECHNOLOGY, 1992, 97 (03) :335-340