The Role of Hydrogen Bonding in the Raman Spectral Signals of Caffeine in Aqueous Solution.
Sara GómezChiara CappelliPublished in: Molecules (Basel, Switzerland) (2024)
The identification and quantification of caffeine is a common need in the food and pharmaceutical industries and lately also in the field of environmental science. For that purpose, Raman spectroscopy has been used as an analytical technique, but the interpretation of the spectra requires reliable and accurate computational protocols, especially as regards the Resonance Raman (RR) variant. Herein, caffeine solutions are sampled using Molecular Dynamics simulations. Upon quantification of the strength of the non-covalent intermolecular interactions such as hydrogen bonding between caffeine and water, UV-Vis, Raman, and RR spectra are computed. The results provide general insights into the hydrogen bonding role in mediating the Raman spectral signals of caffeine in aqueous solution. Also, by analyzing the dependence of RR enhancement on the absorption spectrum of caffeine, it is proposed that the sensitivity of the RR technique could be exploited at excitation wavelengths moderately far from 266 nm, yet achieving very low detection limits in the quantification caffeine content.
Keyphrases
- aqueous solution
- raman spectroscopy
- molecular dynamics simulations
- label free
- optical coherence tomography
- energy transfer
- public health
- photodynamic therapy
- magnetic resonance imaging
- molecular docking
- magnetic resonance
- quantum dots
- molecular dynamics
- mass spectrometry
- liquid chromatography
- climate change
- contrast enhanced
- life cycle