Anharmonic DFT Study of Near-Infrared Spectra of Caffeine: Vibrational Analysis of the Second Overtones and Ternary Combinations

Anharmonic quantum chemical calculations were employed to simulate and interpret a near-infrared (NIR) spectrum of caffeine. First and second overtones, as well as binary and ternary combination bands, were obtained, accurately reproducing the lineshape of the experimental spectrum in the region of...

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Main Authors: Justyna Grabska, Krzysztof B. Beć, Yukihiro Ozaki, Christian W. Huck
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:Molecules
Subjects:
Online Access:https://www.mdpi.com/1420-3049/26/17/5212
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spelling doaj-8787746401d641b1ac69c7370041fef22021-09-09T13:53:07ZengMDPI AGMolecules1420-30492021-08-01265212521210.3390/molecules26175212Anharmonic DFT Study of Near-Infrared Spectra of Caffeine: Vibrational Analysis of the Second Overtones and Ternary CombinationsJustyna Grabska0Krzysztof B. Beć1Yukihiro Ozaki2Christian W. Huck3CCB—Center for Chemistry and Biomedicine, Institute of Analytical Chemistry and Radiochemistry, Leopold-Franzens University, Innrain 80/82, 6020 Innsbruck, AustriaCCB—Center for Chemistry and Biomedicine, Institute of Analytical Chemistry and Radiochemistry, Leopold-Franzens University, Innrain 80/82, 6020 Innsbruck, AustriaSchool of Biological and Environmental Sciences, Kwansei Gakuin University, Sanda 669-1337, Hyogo, JapanCCB—Center for Chemistry and Biomedicine, Institute of Analytical Chemistry and Radiochemistry, Leopold-Franzens University, Innrain 80/82, 6020 Innsbruck, AustriaAnharmonic quantum chemical calculations were employed to simulate and interpret a near-infrared (NIR) spectrum of caffeine. First and second overtones, as well as binary and ternary combination bands, were obtained, accurately reproducing the lineshape of the experimental spectrum in the region of 10,000–4000 cm<sup>−1</sup> (1000–2500 nm). The calculations enabled performing a detailed analysis of NIR spectra of caffeine, including weak bands due to the second overtones and ternary combinations. A highly convoluted nature of NIR spectrum of caffeine was unveiled, with numerous overlapping bands found beneath the observed spectral lineshape. To properly reflect that intrinsic complexity, the band assignments were provided in the form of heat maps presenting the contributions to the NIR spectrum from various kinds of vibrational transitions. These contributions were also quantitatively assessed in terms of the integral intensities. It was found that the combination bands provide the decisively dominant contributions to the NIR spectrum of caffeine. The first overtones gain significant importance between 6500–5500 cm<sup>−1</sup>, while the second overtones are meaningful in the higher wavenumber regions, particularly in the 10,000–7000 cm<sup>−1</sup> region. The obtained detailed band assignments enabled deep interpretation of the absorption regions of caffeine identified in the literature as meaningful for analytical applications of NIR spectroscopy focused on quantitative analysis of caffeine content in drugs and natural products.https://www.mdpi.com/1420-3049/26/17/5212near-infrared (NIR) spectroscopyovertonecombination bandcaffeineanharmonicity
collection DOAJ
language English
format Article
sources DOAJ
author Justyna Grabska
Krzysztof B. Beć
Yukihiro Ozaki
Christian W. Huck
spellingShingle Justyna Grabska
Krzysztof B. Beć
Yukihiro Ozaki
Christian W. Huck
Anharmonic DFT Study of Near-Infrared Spectra of Caffeine: Vibrational Analysis of the Second Overtones and Ternary Combinations
Molecules
near-infrared (NIR) spectroscopy
overtone
combination band
caffeine
anharmonicity
author_facet Justyna Grabska
Krzysztof B. Beć
Yukihiro Ozaki
Christian W. Huck
author_sort Justyna Grabska
title Anharmonic DFT Study of Near-Infrared Spectra of Caffeine: Vibrational Analysis of the Second Overtones and Ternary Combinations
title_short Anharmonic DFT Study of Near-Infrared Spectra of Caffeine: Vibrational Analysis of the Second Overtones and Ternary Combinations
title_full Anharmonic DFT Study of Near-Infrared Spectra of Caffeine: Vibrational Analysis of the Second Overtones and Ternary Combinations
title_fullStr Anharmonic DFT Study of Near-Infrared Spectra of Caffeine: Vibrational Analysis of the Second Overtones and Ternary Combinations
title_full_unstemmed Anharmonic DFT Study of Near-Infrared Spectra of Caffeine: Vibrational Analysis of the Second Overtones and Ternary Combinations
title_sort anharmonic dft study of near-infrared spectra of caffeine: vibrational analysis of the second overtones and ternary combinations
publisher MDPI AG
series Molecules
issn 1420-3049
publishDate 2021-08-01
description Anharmonic quantum chemical calculations were employed to simulate and interpret a near-infrared (NIR) spectrum of caffeine. First and second overtones, as well as binary and ternary combination bands, were obtained, accurately reproducing the lineshape of the experimental spectrum in the region of 10,000–4000 cm<sup>−1</sup> (1000–2500 nm). The calculations enabled performing a detailed analysis of NIR spectra of caffeine, including weak bands due to the second overtones and ternary combinations. A highly convoluted nature of NIR spectrum of caffeine was unveiled, with numerous overlapping bands found beneath the observed spectral lineshape. To properly reflect that intrinsic complexity, the band assignments were provided in the form of heat maps presenting the contributions to the NIR spectrum from various kinds of vibrational transitions. These contributions were also quantitatively assessed in terms of the integral intensities. It was found that the combination bands provide the decisively dominant contributions to the NIR spectrum of caffeine. The first overtones gain significant importance between 6500–5500 cm<sup>−1</sup>, while the second overtones are meaningful in the higher wavenumber regions, particularly in the 10,000–7000 cm<sup>−1</sup> region. The obtained detailed band assignments enabled deep interpretation of the absorption regions of caffeine identified in the literature as meaningful for analytical applications of NIR spectroscopy focused on quantitative analysis of caffeine content in drugs and natural products.
topic near-infrared (NIR) spectroscopy
overtone
combination band
caffeine
anharmonicity
url https://www.mdpi.com/1420-3049/26/17/5212
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