6 Two-Dimensional Correlation Spectroscopy
125
4. I. Noda, Generalized two-dimensional correlation method applicable to infrared, raman, and
other types of spectroscopy. Appl. Spectrosc. 47, 1329–1336 (1993)
5. I. Noda, Y. Ozaki, Two Dimensional Correlation Spectroscopy Applications in Vibrational and
Optical Spectroscopy (Chichester, UK, Wiley, 2004)
6. M.A. Czarnecki, Y. Morisawa, Y. Futami, Y. Ozaki, Advances in molecular structure and
interaction studies using near-infrared spectroscopy. Chem. Rev. 115, 9707–9744 (2015)
7. M.A. Czarnecki, Two-dimensional correlation analysis of hydrogen-bonded systems: basic
molecules. Appl. Spectrosc. Rev. 46, 67–103 (2011)
8. I. Noda, Determination of two-dimensional correlation spectra using the Hilbert transform.
Appl. Spectrosc. 54, 994–999 (2000)
9. M.A. Czarnecki, Two-dimensional correlation spectroscopy: effect of normalization of the
dynamic spectra. Appl. Spectrosc. 53, 1392–1397 (1999)
10. A. Gericke, S.J. Gadaleta, J.W. Brauner, R. Mendelsohn, Characterization of biological samples
by two-dimensional infrared spectroscopy: simulation of frequency, bandwidth, and intensity
changes. Biospectroscopy 2, 341–351 (1996)
11. P.J. Tandler, P.B. Harrington, H. Richardson, Effects of static spectrum removal and noise on
2D-correlation spectra of kinetic data. Anal. Chim. Acta 368, 45–57 (1998)
12. M.A. Czarnecki, Interpretation of two-dimensional correlation spectra: science or art? Appl.
Spectrosc. 52, 1583–1590 (1998)
13. M.A. Czarnecki, Two-dimensional correlation spectroscopy: effect of band position, width,
and intensity changes on correlation intensities. Appl. Spectrosc. 54, 986–993 (2000)
14. C. Zimba, Presented at the Second International Symposium on Advanced Infrared Spectroscopy (AIRS II) (Durham, NC, 1996)
15. S. Šaši´ c, A. Muszynski, Y. Ozaki, A new possibility of the generalized two-dimensional correlation spectroscopy. 1. Sample—Sample Correlation Spectroscopy. J. Phys. Chem. A 104, 6380
(2000)
16. S. Šaši´ c, A. Muszynski, Y. Ozaki, A new possibility of the generalized two-dimensional
correlation spectroscopy. 2. Sample—Sample and Wavenumber—Wavenumber Correlations
of Temperature-Dependent Near-Infrared Spectra of Oleic Acid in the Pure Liquid State. J.
Phys. Chem. A 104, 6380–6387 (2000)
17. A. Watanabe, S. Morita, Y. Ozaki, Temperature-Dependent structural changes in hydrogen
bonds in microcrystalline cellulose studied by infrared and near-infrared spectroscopy
with perturbation-correlation moving-window two-dimensional correlation analysis. Appl.
Spectrosc. 60, 611–618 (2006)
18. M. Thomas, H.H. Richardson, Two-dimensional FT-IR correlation analysis of the phase transitions in a liquid crystal, 4 -n-octyl-4-cyanobiphenyl (8CB). Vib. Spectrosc. 24, 137–146
(2000)
19. S. Morita, H. Shinzawa, R. Tsenkova, I. Noda, Y. Ozaki, Computational simulations and a
practical application of moving-window two-dimensional correlation spectroscopy. J. Mol.
Struct. 799, 111–120 (2006)
20. S. Morita, H. Shinzawa, I. Noda, Y. Ozaki, Perturbation-correlation moving-window twodimensional correlation spectroscopy. Appl. Spectrosc. 60, 398–406 (2006)
21. I. Noda, Y. Liu, Y. Ozaki, M.A. Czarnecki, Two-dimensional Fourier transform near-infrared
correlation spectroscopy studies of temperature-dependent spectral variations of oleyl alcohol.
J. Phys. Chem. 99, 3068–3073 (1995)
22. M. Kwa´ sniewicz, M.A. Czarnecki, MIR and NIR group spectra of n-alkanes and 1chloroalkanes. Spectrochim. Acta A 143, 165–171 (2015)
23. M. Kwa´ sniewicz, M.A. Czarnecki, The Effect of chain length on mid-infrared and near-infrared
spectra of aliphatic 1-alcohols. Appl. Spectrosc. 72, 288–296 (2018)
24. P. Tomza, M.A. Czarnecki, Microheterogeneity in binary mixtures of propyl alcohols with
water: NIR spectroscopic, two-dimensional correlation and multivariate curve resolution study.
J. Mol. Liq. 209, 115–120 (2015)
25. W. Wrzeszcz, P. Tomza, M. Kwa´ sniewicz, S. Mazurek, R. Szostak, M.A. Czarnecki,
Microheterogeneity in binary mixtures of methanol with aliphatic alcohols: ATR-IR/NIR
spectroscopic, chemometrics and DFT studies. RSC Adv. 6, 37195–37202 (2016)
Précédent

- 130/586

Suivant