Waveguiding properties of fiber-optic capillaries for chemical sensing applications

被引:39
作者
Keller, B. K. [1 ]
DeGrandpre, M. D. [1 ]
Palmer, C. P. [1 ]
机构
[1] Univ Montana, Dept Chem, Missoula, MT 59812 USA
关键词
capillary waveguide; evanescent absorbance spectroscopy; attenuated total reflection spectroscopy; liquid core waveguide;
D O I
10.1016/j.snb.2007.02.022
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
The optical properties of a novel fused silica fiber-optic capillary (FOCap) waveguide for absorbance spectroscopy were evaluated. Absorbance within the tubing was measured by optically coupling the FOCap to a spectrophotometer. The FOCap operated evanescently or as a liquid core waveguide (LCW) depending upon the refractive index of the solution within the capillary core. Evanescent absorbance was linear with concentration of a non-polar dye but non-linear with ionic dyes due to adsorption to the capillary wall. Evanescent absorbance was linear with FOCap length up to 50 m. Evanescent field depth of penetration ratios determined from peak absorbances at lambda(max) for a series of thiacyanine dyes show increasing penetration depth with increasing absorbance wavelength as predicted by theory. Evanescent absorbance measurements in 50, 150, and 250 mu m inner diameter (ID) FOCaps show that greater sensitivity is achieved in thinner-walled tubing with more internal reflections. The evanescent effective pathlength ratio (EPLR) of 150 mu m ID FOCaps is on the order of -10(-6) to 10(-5) m/m of tubing length. FOCaps operating as LCWs have shorter effective pathlengths than conventional polyimide-coated glass capillaries. A FOCap that determines pH from the evanescent absorbance spectrum of immobilized fluorescein demonstrates the utility of the device as an optical chemical sensor. (C) 2007 Elsevier B.V. All rights reserved.
引用
收藏
页码:360 / 371
页数:12
相关论文
共 48 条
[1]   Waveguide capillary cell for low-refractive-index liquids [J].
Altkorn, R ;
Koev, I ;
Gottlieb, A .
APPLIED SPECTROSCOPY, 1997, 51 (10) :1554-1558
[2]  
ALTKORN R, 1997, J NEAR INFRARED SPEC, V5, P35
[3]  
Atkins P.W., 1994, PHYSICAL CHEM, P992
[4]   Linearity and effective optical pathlength of liquid waveguide capillary cells. [J].
Belz, M ;
Dress, P ;
Sukhitskiy, A ;
Liu, S .
INTERNAL STANDARDIZATION AND CALIBRATION ARCHITECTURES FOR CHEMICAL SENSORS, 1999, 3856 :271-281
[5]   Light transmission characteristics of silica capillaries [J].
Borecki, M. ;
Korwin-Pawlowski, M. ;
Beblowska, M. .
PHOTONICS APPLICATIONS IN ASTRONOMY, COMMUNICATIONS, INDUSTRY, AND HIGH-ENERGY PHYSICS EXPERIMENTS 2006, PTS 1 AND 2, 2006, 6347
[6]  
D'Sa EJ, 2001, LIMNOL OCEANOGR, V46, P742
[7]   A FIBEROPTIC FT-NIR EVANESCENT FIELD ABSORBENCY SENSOR [J].
DEGRANDPRE, MD ;
BURGESS, LW .
APPLIED SPECTROSCOPY, 1990, 44 (02) :273-279
[8]   LONG PATH FIBER-OPTIC SENSOR FOR EVANESCENT FIELD ABSORBANCE MEASUREMENTS [J].
DEGRANDPRE, MD ;
BURGESS, LW .
ANALYTICAL CHEMISTRY, 1988, 60 (23) :2582-2586
[9]   Physical analysis of teflon coated capillary waveguides [J].
Dress, P ;
Belz, M ;
Klein, KF ;
Grattan, KTV ;
Franke, H .
SENSORS AND ACTUATORS B-CHEMICAL, 1998, 51 (1-3) :278-284
[10]   REVERSIBLE OPTICAL-WAVEGUIDE SENSOR FOR AMMONIA VAPORS [J].
GIULIANI, JF ;
WOHLTJEN, H ;
JARVIS, NL .
OPTICS LETTERS, 1983, 8 (01) :54-56