Route to higher fidelity FT-IR imaging

被引:34
作者
Bhargava, R [1 ]
Wang, SQ [1 ]
Koenig, JL [1 ]
机构
[1] Case Western Reserve Univ, Dept Macromol Sci, Cleveland, OH 44106 USA
关键词
Fourier transform infrared microspectroscopy; imaging; minimum noise fraction; principal components; signal-to-noise ratio; morphological analysis; polymer dispersed liquid crystals;
D O I
10.1366/0003702001949898
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
FT-IR imaging employing a focal plane array (FPA) detector is often plagued by low signal-to-noise ratio (SNR) data. A mathematical transform that re-orders spectral data points into decreasing order of SNR is employed to reduce noise by retransforming the ordered data set using only a few relevant data points, This approach is shown to result in significant gains in terms of image fidelity by examining microscopically phase-separated composites termed polymer dispersed liquid crystals (PDLCs). The actual gains depend on the SNR characteristics of the original data. Noise is reduced by a factor greater than 5 if the noise in the initial data is sufficiently low. For a moderate absorbance level of 0.5 a.u., the achievable SNR by reducing noise is greater than 100 for a collection time of less than 3 min. The criteria for optimal application of a noise-reducing procedure employing the minimum noise fraction (MNF) transform are discussed and various variables in the process quantified. This noise reduction is shown to provide high-quality images for accurate morphological analysis. The coupling of mathematical transformation techniques with spectroscopic Fourier transform infrared (FT-IR) imaging is shown to result in high-fidelity images without increasing collection time or drastically modifying hardware.
引用
收藏
页码:486 / 495
页数:10
相关论文
共 17 条
[1]   Studying polymer-dispersed liquid-crystal formation by FTIR spectroscopy. 1. Monitoring curing reactions [J].
Bhargava, R ;
Wang, SQ ;
Koenig, JL .
MACROMOLECULES, 1999, 32 (26) :8982-8988
[2]   Studying polymer-dispersed liquid-crystal formation by FTIR spectroscopy. 2. Phase separation and ordering [J].
Bhargava, R ;
Wang, SQ ;
Koenig, JL .
MACROMOLECULES, 1999, 32 (26) :8989-8995
[3]   Towards faster FT-IR imaging by reducing noise [J].
Bhargava, R ;
Ribar, T ;
Koenig, JL .
APPLIED SPECTROSCOPY, 1999, 53 (11) :1313-1322
[4]   FTIR imaging studies of a new two-step process to produce polymer dispersed liquid crystals [J].
Bhargava, R ;
Wang, SQ ;
Koenig, JL .
MACROMOLECULES, 1999, 32 (08) :2748-2760
[5]   FT-IR imaging of the interface in multicomponent systems using optical effects induced by differences in refractive index [J].
Bhargava, R ;
Wang, SQ ;
Koenig, JL .
APPLIED SPECTROSCOPY, 1998, 52 (03) :323-328
[6]  
BHARGAVA R, UNPUB
[7]  
Boardman J.W., 1994, P 10 THEM C GEOL REM, V1, P407
[8]   Polymer-dispersed liquid crystals: Preparation, operation and application [J].
Bouteiller, L ;
LeBarny, P .
LIQUID CRYSTALS, 1996, 21 (02) :157-174
[9]  
CONRADSEN K, 1991, 24 INT S REM SENS EN, P403
[10]   A TRANSFORMATION FOR ORDERING MULTISPECTRAL DATA IN TERMS OF IMAGE QUALITY WITH IMPLICATIONS FOR NOISE REMOVAL [J].
GREEN, AA ;
BERMAN, M ;
SWITZER, P ;
CRAIG, MD .
IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 1988, 26 (01) :65-74